{"id":1060073,"date":"2026-06-30T17:36:28","date_gmt":"2026-06-30T17:36:28","guid":{"rendered":"https:\/\/www.europesays.com\/uk\/1060073\/"},"modified":"2026-06-30T17:36:28","modified_gmt":"2026-06-30T17:36:28","slug":"real-space-imaging-of-the-electron-pair-density-hole-in-molecular-auger-meitner-decay","status":"publish","type":"post","link":"https:\/\/www.europesays.com\/uk\/1060073\/","title":{"rendered":"Real-space imaging of the electron-pair density hole in molecular Auger\u2013Meitner decay"},"content":{"rendered":"<p>When matter is irradiated by light or subjected to other external perturbations, the electrons rearrange in response. Because the motion of each electron is coupled to all other electrons by Coulomb repulsion, the collective response of the electronic system constitutes a challenging many-body problem. A striking example of electron dynamics driven by Coulomb interaction is that of Auger\u2013Meitner decay<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Wentzel, G. &#xDC;ber strahlungslose Quantenspr&#xFC;nge. Z. Phys. 43, 524&#x2013;530 (1927).\" href=\"#ref-CR1\" id=\"ref-link-section-d31488144e907\">1<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Fano, U. Effects of configuration interaction on intensities and phase shifts. Phys. Rev. 124, 1866&#x2013;1878 (1961).\" href=\"#ref-CR2\" id=\"ref-link-section-d31488144e907_1\">2<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Feshbach, H. A unified theory of nuclear reactions. II. Ann. Phys. 19, 287&#x2013;313 (1962).\" href=\"#ref-CR3\" id=\"ref-link-section-d31488144e907_2\">3<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 4\" title=\"Chattarji, D. The Theory of Auger Transitions (Academic Press, 1976).\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#ref-CR4\" id=\"ref-link-section-d31488144e910\" rel=\"nofollow noopener\" target=\"_blank\">4<\/a>, where core-level ionization initiates a rapid cascade of electronic transitions.<\/p>\n<p>Such electron dynamics are illustrated in Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1<\/a> for core-excited sulfur hexafluoride (SF6). Initial absorption of an X-ray photon ionizes the molecule and creates an unstable inner-shell vacancy. This vacancy decays via the concerted motion of two energetically higher lying electrons, with one electron filling the vacancy and the other ejected to carry off the excess energy. Thereby, the original vacancy is replaced by two new, less energetic ones. This process repeats until the system runs out of energy for further ionization, increasing the positive charge on the molecule at each step. The initially compact and localized hole in the electron density grows and becomes more diffuse and distributed across the whole molecule. Eventually, the electrostatically destabilized molecule fragments. This type of electron dynamics is important in the context of radiation damage<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Bouda&#xEF;ffa, B., Cloutier, P., Hunting, D., Huels, M. A. &amp; Sanche, L. Resonant formation of DNA strand breaks by low-energy (3 to 20 eV) electrons. Science 287, 1658&#x2013;1660 (2000).\" href=\"#ref-CR5\" id=\"ref-link-section-d31488144e922\">5<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Martin, F. et al. DNA strand breaks induced by 0&#x2013;4 eV electrons: the role of shape resonances. Phys. Rev. Lett. 93, 068101 (2004).\" href=\"#ref-CR6\" id=\"ref-link-section-d31488144e922_1\">6<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Brun, &#xC9;., Cloutier, P., Sicard-Roselli, C., Fromm, M. &amp; Sanche, L. Damage induced to DNA by low-energy (0&#x2013;30 eV) electrons under vacuum and atmospheric conditions. J. Phys. Chem. B 113, 10008&#x2013;10013 (2009).\" href=\"#ref-CR7\" id=\"ref-link-section-d31488144e922_2\">7<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 8\" title=\"Alizadeh, E., Orlando, T. M. &amp; Sanche, L. Biomolecular damage induced by ionizing radiation: the direct and indirect effects of low-energy electrons on DNA. Annu. Rev. Phys. Chem. 66, 379&#x2013;398 (2015).\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#ref-CR8\" id=\"ref-link-section-d31488144e925\" rel=\"nofollow noopener\" target=\"_blank\">8<\/a> and has been studied in real time by means of attosecond spectroscopy<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Drescher, M. et al. Time-resolved atomic inner-shell spectroscopy. Nature 419, 803&#x2013;807 (2002).\" href=\"#ref-CR9\" id=\"ref-link-section-d31488144e929\">9<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Smirnova, O., Yakovlev, V. S. &amp; Scrinzi, A. Quantum coherence in the time-resolved Auger measurement. Phys. Rev. Lett. 91, 253001 (2003).\" href=\"#ref-CR10\" id=\"ref-link-section-d31488144e929_1\">10<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Uiberacker, M. et al. Attosecond real-time observation of electron tunnelling in atoms. Nature 446, 627&#x2013;632 (2007).\" href=\"#ref-CR11\" id=\"ref-link-section-d31488144e929_2\">11<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Uphues, T. et al. Ion-charge-state chronoscopy of cascaded atomic Auger decay. New J. Phys. 10, 025009 (2008).\" href=\"#ref-CR12\" id=\"ref-link-section-d31488144e929_3\">12<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Krikunova, M. et al. Time-resolved ion spectrometry on xenon with the jitter-compensated soft x-ray pulses of a free-electron laser. New J. Phys. 11, 123019 (2009).\" href=\"#ref-CR13\" id=\"ref-link-section-d31488144e929_4\">13<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Verhoef, A. J. et al. Time-and-energy-resolved measurement of Auger cascades following Kr 3d excitation by attosecond pulses. New J. Phys. 13, 113003 (2011).\" href=\"#ref-CR14\" id=\"ref-link-section-d31488144e929_5\">14<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Haynes, D. C. et al. Clocking Auger electrons. Nat. Phys. 17, 512&#x2013;518 (2021).\" href=\"#ref-CR15\" id=\"ref-link-section-d31488144e929_6\">15<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Li, S. et al. Attosecond coherent electron motion in Auger&#x2013;Meitner decay. Science 375, 285&#x2013;290 (2022).\" href=\"#ref-CR16\" id=\"ref-link-section-d31488144e929_7\">16<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 17\" title=\"Zhang, P. et al. Time-resolved multielectron coincidence spectroscopy of double Auger&#x2013;Meitner decay following Xe 4d ionization. Phys. Rev. Lett. 132, 083201 (2024).\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#ref-CR17\" id=\"ref-link-section-d31488144e932\" rel=\"nofollow noopener\" target=\"_blank\">17<\/a>, which can identify the states involved in the dynamics in terms of their evolution in energy.<\/p>\n<p><b id=\"Fig1\" class=\"c-article-section__figure-caption\" data-test=\"figure-caption-text\">Fig. 1: Schematic of the electron dynamics and the non-resonant X-ray scattering signal that probes it.<\/b><img decoding=\"async\" aria-describedby=\"figure-1-desc\" src=\"https:\/\/www.europesays.com\/uk\/wp-content\/uploads\/2026\/06\/41567_2026_3363_Fig1_HTML.png\" alt=\"Fig. 1: Schematic of the electron dynamics and the non-resonant X-ray scattering signal that probes it.\" loading=\"lazy\" width=\"685\" height=\"387\"\/><\/p>\n<p><b>a<\/b>, A photoionized SF6 molecule undergoes Auger\u2013Meitner decay within 15\u2009fs. In the depicted channel, initial photoionization creates a vacancy in the K shell of the central sulfur atom. Next, this vacancy decays into a double vacancy in the L shell, whereby a second electron is ejected. In the second Auger-Meitner step, a vacancy in the L shell remains and a double vacancy in the molecule\u2019s valence is formed, again by ejecting an electron. The decay channel terminates with the creation of a quadruple vacancy in the valence. The simulated population dynamics of that channel are shown in Extended Data Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Fig4\" rel=\"nofollow noopener\" target=\"_blank\">1<\/a>. Further details on all dominant decay channels for photoionization of both the sulfur and the fluorine atoms are given in Supplementary Section <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">5.1<\/a>. At later times not captured in this experiment, the highly charged and destabilized molecular cation undergoes fragmentation due to Coulomb explosion. <b>b<\/b>, Simulated detector images that show the change in the number of scattered X-ray photons on each pixel. Each detector image captures a snapshot of the dynamics illustrated in <b>a<\/b>.<\/p>\n<p>To fully characterize Coulomb-driven electron dynamics, it is desirable to complement spectroscopic data with direct information about the spatial rearrangement of the electrons. We demonstrate here that this can be achieved by ultrafast nonresonant X-ray scattering of isolated molecules in the gas phase<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 18\" title=\"Stankus, B. et al. Advances in ultrafast gas-phase X-ray scattering. J. Phys. B 53, 234004 (2020).\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#ref-CR18\" id=\"ref-link-section-d31488144e975\" rel=\"nofollow noopener\" target=\"_blank\">18<\/a>. A straightforward transformation of the scattering signal from reciprocal into real space yields the difference in the radial electron-pair density that reveals the spatial redistribution of electrons during Auger\u2013Meitner decay. This information complements spectroscopy and other imaging techniques that may also provide insight into the spatial rearrangement of electrons during molecular Auger\u2013Meitner decay. Such imaging techniques include ultrafast photoelectron momentum imaging, photoelectron or laser-induced electron diffraction, and electron microscopy<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"K&#xFC;bel, M. et al. Spatiotemporal imaging of valence electron motion. Nat. Commun. 10, 1042 (2019).\" href=\"#ref-CR19\" id=\"ref-link-section-d31488144e979\">19<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Popova-Gorelova, D., K&#xFC;pper, J. &amp; Santra, R. Imaging electron dynamics with time- and angle-resolved photoelectron spectroscopy. Phys. Rev. A 94, 013412 (2016).\" href=\"#ref-CR20\" id=\"ref-link-section-d31488144e979_1\">20<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Garg, M. et al. Real-space subfemtosecond imaging of quantum electronic coherences in molecules. Nat. Photon. 16, 196 (2022).\" href=\"#ref-CR21\" id=\"ref-link-section-d31488144e979_2\">21<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Stewart, G. A. et al. Attosecond imaging of electronic wave packets. Phys. Rev. Lett. 130, 083202 (2023).\" href=\"#ref-CR22\" id=\"ref-link-section-d31488144e979_3\">22<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 23\" title=\"Hui, D., Alqattan, H., Sennary, M., Golubev, N. V. &amp; Hassan, M. T. Attosecond electron microscopy and diffraction. Sci. Adv. 10, eadp5805 (2024).\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#ref-CR23\" id=\"ref-link-section-d31488144e982\" rel=\"nofollow noopener\" target=\"_blank\">23<\/a>.<\/p>\n<p>We are able to realize the measurements with the required sub-15-fs time resolution and currently existing technology by exploiting a second-order interaction, that is, the absorption of one X-ray photon followed by the non-resonant scattering of a second X-ray photon. In this scenario, both photons belong to the same incident pulse and interact with the same molecule. This allows the measurements to be taken with an effective time resolution of approximately half the full-width at half-maximum pulse duration. The average intensity\u2013time profile of the X-ray pulses and its corresponding distribution of pump\u2013probe delay times are shown in Extended Data Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>.<\/p>\n<p>To isolate this second-order interaction, our experiment takes advantage of the inherent intensity fluctuations of X-ray pulses generated by self-amplified spontaneous emission at the Linac Coherent Light Source (LCLS) X-ray free-electron laser. Fluctuations in the number of photons per pulse allow the scattering signal to be measured as a function of intensity. In the average intensity regime of 1017\u20131018\u2009W\u2009cm\u22122 considered here, the sequential absorption and scattering of an X-ray photon give rise to a quadratic term in the number of scattered photons as a function of the number of photons in the incident X-ray pulse. On condition that the population of the molecule\u2019s electronic ground state and the number of incident photons are only weakly depleted by the photoabsorption, the number of photons scattered onto the detector can be expanded as<\/p>\n<p>$${n}_{{\\rm{s}}}(q,{n}_{0})\\,\\approx \\,{c}_{1}(q)\\,{n}_{0}\\,+\\,{c}_{2}(q)\\,{n}_{0}^{2},$$<\/p>\n<p>\n                    (1)\n                <\/p>\n<p>in analogy to the description of two-photon absorption. The number of scattered photons ns in equation (<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"equation anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Equ1\" rel=\"nofollow noopener\" target=\"_blank\">1<\/a>) is a function of both the magnitude of the momentum transfer, q, and the number of incident photons, n0. The momentum transfer is related to the scattering angle, \u03b8s, as well as to the mean angular carrier frequency of the X-ray pulse, \u03c90, by \\(q\\approx \\left(2\\,{\\omega }_{0}\/c\\right)\\sin ({\\theta }_{{\\rm{s}}}\/2)\\), where c is the speed of light. Most importantly, the coefficients c1(q) and c2(q) in equation (<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"equation anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Equ1\" rel=\"nofollow noopener\" target=\"_blank\">1<\/a>) refer to scattering probabilities of the target molecule, the former for the electronic ground state and the latter upon photoionization and subsequent Auger\u2013Meitner decay. A quantitative definition of both coefficients is given in equations (<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S8<\/a>)\u2013(<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S12<\/a>) in the <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">Supplementary Information<\/a>.<\/p>\n<p>To isolate c1(q) and c2(q), equation (<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"equation anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Equ1\" rel=\"nofollow noopener\" target=\"_blank\">1<\/a>) is fitted to the measured scattering data. First, the photon counts are binned in q. Then, a fit is obtained for each bin to yield the coefficients as functions of q. Figure <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2a<\/a> shows how the number of scattered photons relates to the number of incident photons in a specific q bin. Figure <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2b<\/a> furthermore displays the second-order contribution obtained by fitting equation (1) to the data in Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2a<\/a>. This demonstrates that, while the linear component dominates the overall scattering signal, the quadratic component is substantial and can be isolated.<\/p>\n<p><b id=\"Fig2\" class=\"c-article-section__figure-caption\" data-test=\"figure-caption-text\">Fig. 2: Relationship between the numbers of incident and scattered X-ray photons measured over 171,757 shots with intensities of 1017\u20131018\u2009W\u2009cm\u22122.<\/b><img decoding=\"async\" aria-describedby=\"figure-2-desc\" src=\"https:\/\/www.europesays.com\/uk\/wp-content\/uploads\/2026\/06\/41567_2026_3363_Fig2_HTML.png\" alt=\"Fig. 2: Relationship between the numbers of incident and scattered X-ray photons measured over 171,757 shots with intensities of 1017&#x2013;1018&#x2009;W&#x2009;cm&#x2212;2.\" loading=\"lazy\" width=\"685\" height=\"847\"\/><\/p>\n<p><b>a<\/b>, Density histogram of the number shots with n0 incident and ns scattered X-ray photons within the momentum-transfer interval 0.574\u2009\u00c5\u22121 &lt; q &lt; 0.677\u2009\u00c5\u22121. <b>b<\/b>, The second-order contribution to the data in <b>a<\/b>. The data points are centres of Gaussians fitted to the respective density histogram in each bin in n0. The error bars display the 2\u03c3 (standard deviation) uncertainty normalized by N\u22121\/2 where N \u2208 [127, 5,068] is the number of shots recorded within a given bin in n0. This second-order contribution arises from photoionization by a first and subsequent scattering of a second X-ray photon.<\/p>\n<p>Crucially, the ratio of the quadratic and linear coefficients in equation (<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"equation anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Equ1\" rel=\"nofollow noopener\" target=\"_blank\">1<\/a>) grants direct access to the relative difference scattering signal,<\/p>\n<p>$$\\frac{\\Delta S(q)}{{S}_{0}(q)}\\,=\\,\\frac{2{\\rm{\\pi }}{w}^{2}}{{\\sigma }_{{\\rm{a}}}}\\,\\frac{{c}_{2}(q)}{{c}_{1}(q)}.$$<\/p>\n<p>\n                    (2)\n                <\/p>\n<p>Here, S0(q) is the scattering signal of the neutral molecule in its electronic ground state, and \u0394S(q) refers to the difference between the scattering signal of the ionized molecule undergoing Auger\u2013Meitner decay and S0(q). Equation (<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"equation anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Equ2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>) relates \u0394S(q)\/S0(q) to the ratio c2(q)\/c1(q) via a global scaling factor that depends solely on the beam waist of the X-ray pulse, w, and on the photoabsorption cross-section, \u03c3a, of the SF6 molecule. At 9.486\u2009keV mean photon energy, \u03c3a is about 4.8 \u00d7 10\u221221\u2009cm2 and dominated by K-shell ionization from both S(1s) and F(1s) orbitals<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 24\" title=\"Scofield, J. H. Theoretical Photoionization Cross Sections from 1 to 1500 keV. Report No. UCRL-51326 (Lawrence Livermore National Laboratory, 1973).\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#ref-CR24\" id=\"ref-link-section-d31488144e1577\" rel=\"nofollow noopener\" target=\"_blank\">24<\/a>. With an overall scaling factor of 1.1 \u00d7 10\u221213 deduced from minimizing the mean absolute deviation between the measured and the simulated scattering signals, the beam waist can be estimated to be w \u2248 0.91\u2009\u03bcm (Supplementary Section <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">3<\/a>).<\/p>\n<p>The relative difference scattering signal \u0394S(q)\/S0(q) extracted from the experimental data by means of equations (<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"equation anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Equ1\" rel=\"nofollow noopener\" target=\"_blank\">1<\/a>) and (<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"equation anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Equ2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>) is shown alongside the theoretical signal in Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3a<\/a>. Similarly, the measured and simulated ground-state signals S0(q) are displayed in Extended Data Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Fig6\" rel=\"nofollow noopener\" target=\"_blank\">3<\/a>. Overall, the measured and simulated curves agree well. Apart from a small, most likely spurious shoulder in the vicinity of q \u2248 1.2\u2009\u00c5\u22121 and a few outliers, the simulated scattering signal in Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3a<\/a> lies consistently within the bootstrapped 1\u03c3 (standard deviation) confidence interval of the experimental data over the entire range of momentum transfer. It is particularly noteworthy that the maxima in both theory and experiment coincide (at around 2.0\u2009\u00c5\u22121). The same applies to the first local minimum at 2.7\u2009\u00c5\u22121, although the experimental error confines the position less precisely to the interval 2.5\u20132.9\u2009\u00c5\u22121. The negative signal at low values of q reflects the loss of electrons from the molecule, first by photoionization and then by subsequent Auger\u2013Meitner decay. The longer the time between the initial photoionization and the scattering of the second photon, the further the decay proceeds and the stronger the drop of \u0394S(q)\/S0(q) at low values of q. Here, the signal approaches \u22128.6% as q \u2192 0, revealing that, on average, ~3.1 electrons are ejected from the molecule before it is probed via the scattering of the second hard X-ray photon.<\/p>\n<p><b id=\"Fig3\" class=\"c-article-section__figure-caption\" data-test=\"figure-caption-text\">Fig. 3: Change in the evolving radial electron-pair density detected by ultrafast X-ray scattering.<\/b><img decoding=\"async\" aria-describedby=\"figure-3-desc\" src=\"https:\/\/www.europesays.com\/uk\/wp-content\/uploads\/2026\/06\/41567_2026_3363_Fig3_HTML.png\" alt=\"Fig. 3: Change in the evolving radial electron-pair density detected by ultrafast X-ray scattering.\" loading=\"lazy\" width=\"685\" height=\"476\"\/><\/p>\n<p><b>a<\/b>, Measured (red points) and simulated (blue line) per cent difference scattering signals of core-ionized and Auger\u2013Meitner decaying SF6 as a function of momentum transfer q. The experimental signal was obtained with 9.486\u2009keV X-ray pulses with an effective average pump\u2013probe delay time of 14.6\u2009fs. It was scaled according to equation (<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"equation anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Equ2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>) such that the mean absolute deviation with respect to the simulated signal was minimized. The error bars display the bootstrapped 1\u03c3 (standard deviation) uncertainty of the measured signal. The simulation employed a kinetic model and ab initio electronic structure calculations of molecular scattering probabilities. <b>b<\/b>, Pulse-averaged hole in the radial electron-pair density as a function of electron-pair distance r12, calculated by an inverse spherical Bessel transform of the difference scattering signal \u0394S(q) in <b>a<\/b>. The error bars display the 1\u03c3 uncertainty derived from bootstrapping within the 3\u03c3 error of the experimental difference scattering signal. <b>c<\/b>, Simulated evolution of the instantaneous hole in the radial electron-pair density of Auger\u2013Meitner decaying SF6 as a function of the electron-pair distance, r12, and the delay time after the initial K-shell photoionization, \u03b4. The colours reflect the depth of the hole. The horizontal dashed lines point out characteristic distances in the molecule. <b>d<\/b>, The molecule\u2019s charge number, z, and change in electron-pair repulsion energy, \u0394Vee, corresponding to the simulated dynamics shown in <b>c<\/b>.<\/p>\n<p>Importantly, the shape of the scattering curve provides detailed information on the electronic structure at the time of scattering. The total isotropic X-ray scattering signal of a molecule in the gas phase probes the radial electron-pair density, \u0393(r12), also known as the radial intracule density<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Tavard, C., Rouault, M. &amp; Roux, M. Diffraction des rayons X et des &#xE9;lectrons par les mol&#xE9;cules &#x2013; III. &#x2013; Une m&#xE9;thode de d&#xE9;termination des densit&#xE9;s &#xE9;lectroniques mol&#xE9;culaires. J. Chim. Phys. 62, 1410&#x2013;1417 (1965).\" href=\"#ref-CR25\" id=\"ref-link-section-d31488144e1760\">25<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Gavin, R. M. &amp; Bartell, L. S. Effects of electron correlation in X-ray and electron diffraction. III. Experimental electron-electron distribution functions. J. Chem. Phys. 44, 3687&#x2013;3691 (1966).\" href=\"#ref-CR26\" id=\"ref-link-section-d31488144e1760_1\">26<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Dixit, G., Slowik, J. M. &amp; Santra, R. Theory of time-resolved nonresonant X-ray scattering for imaging ultrafast coherent electron motion. Phys. Rev. A 89, 043409 (2014).\" href=\"#ref-CR27\" id=\"ref-link-section-d31488144e1760_2\">27<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Simmermacher, M., Moreno Carrascosa, A., Henriksen, N. E., M&#xF8;ller, K. B. &amp; Kirrander, A. Theory of ultrafast X-ray scattering by molecules in the gas phase. J. Chem. Phys. 151, 174302 (2019).\" href=\"#ref-CR28\" id=\"ref-link-section-d31488144e1760_3\">28<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 29\" title=\"Simmermacher, M., Weber, P. M. &amp; Kirrander, A. in Structural Dynamics with X-ray and Electron Scattering, of Theoretical and Computational Chemistry Series Vol. 25 (eds Amini, K., Rouz&#xE9;e, A. &amp; Vrakking, M. J. J.) 85&#x2013;125 (Royal Society of Chemistry, 2023).\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#ref-CR29\" id=\"ref-link-section-d31488144e1763\" rel=\"nofollow noopener\" target=\"_blank\">29<\/a>. This density conveys the probability of finding two electrons within the molecule at a distance r12 from each other. Strikingly, the pulse-averaged change in \u0393(r12) for the molecule ionized by the first X-ray photon can be obtained from the absolute difference scattering signal \u0394S(q), which is, except for a few multiplicative parameters, identical to the second-order coefficient c2(q) in equations (<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"equation anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Equ1\" rel=\"nofollow noopener\" target=\"_blank\">1<\/a>) and (<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"equation anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Equ2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>). The change in \u0393(r12) follows directly from \u0394S(q) via an inverse zeroth-order spherical Bessel transform from reciprocal into real space,<\/p>\n<p>$$\\Delta \\varGamma ({r}_{12})\\,=\\,\\frac{{r}_{12}}{{\\rm{\\pi }}}\\,{\\int }_{\\!\\!0}^{\\infty }q\\,\\sin (q{r}_{12})\\,\\left(\\Delta S(q)+\\Delta {N}_{{\\rm{e}}}\\right)\\,{\\rm{d}}q,$$<\/p>\n<p>\n                    (3)\n                <\/p>\n<p>where \u0394S(q) is defined in units of the Thomson scattering cross section and \u0394Ne refers to the total number of photoelectrons and Auger\u2013Meitner electrons that move out of the interaction region before the X-ray photon is scattered. We note that, while the value of \u0394Ne cannot be immediately inferred from the experimental scattering data, its overall effect upon \u0394\u0393(r12) is small. From our model and the experimental parameters, we can deduce that, for the case at hand, \u0394Ne is at most 0.24, compared with a \u0394S(q) of nearly \u2212420 at low q. Setting \u0394Ne to zero would affect \u0394\u0393(r12) by less than 1%, which is well below the experimental uncertainty.<\/p>\n<p>We further note that equation (<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"equation anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Equ3\" rel=\"nofollow noopener\" target=\"_blank\">3<\/a>) implies that the X-ray scattering signal also contains information about the change in the Coulomb repulsion energy of the electrons in the target<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 30\" title=\"Bonham, R. A. Relations Connecting Molecular Properties and Electron and X-Ray Diffraction Intensities. J. Phys. Chem. 71, 856&#x2013;862 (1967).\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#ref-CR30\" id=\"ref-link-section-d31488144e2053\" rel=\"nofollow noopener\" target=\"_blank\">30<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 31\" title=\"Breitenstein, M., Meyer, H. &amp; Schweig, A. Molecular electron pair distributions and electron repulsion energies. Chem. Phys. 124, 47&#x2013;54 (1988).\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#ref-CR31\" id=\"ref-link-section-d31488144e2056\" rel=\"nofollow noopener\" target=\"_blank\">31<\/a>. This change can in principle be obtained from the difference scattering signal by integration over q,<\/p>\n<p>$$\\Delta {V}_{\\mathrm{ee}}\\,=\\,\\frac{1}{{\\rm{\\pi }}}\\,{\\int }_{\\!\\!0}^{\\infty }\\left(\\Delta S(q)+\\Delta {N}_{{\\rm{e}}}\\right)\\,{\\rm{d}}q,$$<\/p>\n<p>\n                    (4)\n                <\/p>\n<p>with \u0394Vee and q given in atomic units. The extraction of quantitative values of \u0394Vee from experimental scattering data, however, requires not only an excellent signal-to-noise ratio and an accurate estimate of the scaling factor but also measurements over a wider range of q than in the present experiment. The lack of scattering signal below 0.3\u2009\u00c5\u22121 where \u0394S(q) is strong leads to an underestimation of the decrease in Coulomb repulsion energy by about 60%. While integration of the simulated scattered signal from 0 to 150\u2009\u00c5\u22121 yields \u0394Vee \u2248 \u22121.72\u2009keV, the value directly extracted from the measured data amounts to only \u22121.05 \u00b1 0.08\u2009keV, with the given error reflecting solely the bootstrapped 1\u03c3 uncertainty in the data. Nevertheless, if the simulated signal is restricted to the momentum-transfer range covered by the experiment, the predicted value reduces to \u22121.02\u2009keV, which is in excellent agreement with the experiment. Although not quantitative, the experimental \u0394Vee thus clearly reveals that the Coulomb repulsion energy decreases measurably in response to photoionization and demonstrates that non-resonant gas-phase X-ray scattering can grant access to fundamental properties of molecular electronic structure.<\/p>\n<p>The lack of signal at low momentum transfer poses much less of a problem for the radial electron-pair density than for the Coulomb repulsion energy. The factor \\(q\\,\\sin (q{r}_{12})\\) in equation (<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"equation anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Equ3\" rel=\"nofollow noopener\" target=\"_blank\">3<\/a>) severely dampens the effect of \u0394S(q) on \u0394\u0393(r12) at low q. The values of \u0394\u0393(r12) obtained from a straightforward numerical transform of the measured difference scattering signal are shown in Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3b<\/a>. Despite the limited momentum-transfer range in the experiment, the empirical and simulated data agree remarkably well. Apart from a small deviation in the range 1.0 \u00c5 &lt; r12 &lt; 2.0\u2009\u00c5, the theoretical difference pair density lies consistently within the bootstrapped 1\u03c3 confidence interval of the experimental data over the entire range of electron\u2013electron distances. The data reveal a broad hole in the radial electron-pair density, which directly reflects the molecule\u2019s loss of electrons due to photoionization and Auger\u2013Meitner decay.<\/p>\n<p>To place the measured electron-pair density hole in Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3b<\/a> more explicitly into the context of the full decay dynamics, we have simulated the time evolution of the target system for the first 15\u2009fs after photoionization using a kinetic model and ab initio electronic structure calculations. The results of this simulation are shown in Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3c<\/a>, with Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3d<\/a> displaying the corresponding increase in the molecule\u2019s charge number, z(\u03b4), and the decrease in Coulomb repulsion energy, \u0394Vee(\u03b4). While z(\u03b4) and \u0394Vee(\u03b4) follow relatively simple exponential decays that reflect the overall relaxation dynamics, the temporally resolved changes in \u0394\u0393(r12) provide more specific information on how the Auger\u2013Meitner decay proceeds in real space.<\/p>\n<p>During the first 3\u2009fs after photoionization, the electron-pair difference density displays three sharply peaked local minima at around 0.16\u2009\u00c5, 1.56\u2009\u00c5 and 2.21\u2009\u00c5 as well as a weaker shoulder at 3.12\u2009\u00c5. The presence of these minima reveals that the hole is compact and localized within the core shells of the atoms. The minimum at r12 \u2248 0.16\u2009\u00c5 relates to the distance between a vacancy in either the S(1s), F(1s) or S(2s) orbital and electrons in the same atom, in particular in the same shell. Similarly, the minimum at 1.56\u2009\u00c5 correlates with the length of the sulfur\u2013fluorine bond and thus reflects the depletion of electrons in the core of the sulfur and the fluorine atoms. Finally, the minimum at 2.21\u2009\u00c5 and the shoulder at 3.12\u2009\u00c5 correlate with the distances between two neighbouring and two opposing fluorine atoms, respectively. Over time, these local minima disappear. The hole in the electron-pair density loses structure, deepens and broadens, and moves towards larger values of r12, with a final minimum at around 2.50\u2009\u00c5. The scattering signal can thus resolve, via the electron-pair density, how the hole expands and migrates from the core into the valence during the Auger\u2013Meitner decay.<\/p>\n<p>In the experimental data shown in Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3a,b<\/a>, the hole has already dissipated into the valence and we therefore see a rather broad and deep dip in the pair density without further features. Future time-resolved measurements that exploit attosecond X-ray pulses currently developed<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Marinelli, A. et al. Experimental demonstration of a single-spike hard-X-ray free-electron laser starting from noise. Appl. Phys. Lett. 111, 151101 (2017).\" href=\"#ref-CR32\" id=\"ref-link-section-d31488144e2390\">32<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Yan, J. et al. Terawatt-attosecond hard X-ray free-electron laser at high repetition rate. Nat. Photonics 18, 1293&#x2013;1298 (2024).\" href=\"#ref-CR33\" id=\"ref-link-section-d31488144e2390_1\">33<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 34\" title=\"Inoue, I. et al. Nanofocused attosecond hard X-ray free-electron laser with intensity exceeding 1019 W\/cm2. Optica 12, 309&#x2013;310 (2025).\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#ref-CR34\" id=\"ref-link-section-d31488144e2393\" rel=\"nofollow noopener\" target=\"_blank\">34<\/a> should be able to track more detailed changes in the electron-pair density as the molecule cascades quickly through the succession of states during the first 5\u2009fs, followed by the slower build-up of final states at longer times. We anticipate that such measurements will not have to rely on the second-order interaction exploited here and will be carried out using a more traditional pump\u2013probe set-up with two separate X-ray pulses<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Hara, T. et al. Two-colour hard X-ray free-electron laser with wide tunability. Nat. Commun. 4, 2919 (2013).\" href=\"#ref-CR35\" id=\"ref-link-section-d31488144e2397\">35<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Chollet, M. et al. The X-ray pump&#x2013;probe instrument at the Linac Coherent Light Source. J. Synchrotron Radiat. 22, 503&#x2013;507 (2015).\" href=\"#ref-CR36\" id=\"ref-link-section-d31488144e2397_1\">36<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Inoue, I. et al. Observation of femtosecond X-ray interactions with matter using an X-ray&#x2013;X-ray pump&#x2013;probe scheme. Proc. Natl Acad. Sci. USA 113, 1492&#x2013;1497 (2016).\" href=\"#ref-CR37\" id=\"ref-link-section-d31488144e2397_2\">37<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Opara, N. L. et al. Demonstration of femtosecond X-ray pump X-ray probe diffraction on protein crystals. Struct. Dyn. 5, 054303 (2018).\" href=\"#ref-CR38\" id=\"ref-link-section-d31488144e2397_3\">38<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 39\" title=\"Inoue, I. et al. Atomic-scale visualization of ultrafast bond breaking in X-ray-excited diamond. Phys. Rev. Lett. 126, 117403 (2021).\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#ref-CR39\" id=\"ref-link-section-d31488144e2400\" rel=\"nofollow noopener\" target=\"_blank\">39<\/a> once few- or sub-femtosecond pulses in the hard X-ray regime and equally short pump\u2013probe delay times become routinely available at free-electron laser facilities. This will eventually permit the construction of a detailed temporal map of the changes in the radial electron-pair density by varying the delay time between the two pulses.<\/p>\n<p>In summary, we report the first direct measurement of an ultrafast change in the radial electron-pair density of a molecule undergoing rapid dynamics, imaging the rearrangement of correlated electrons in response to an external perturbation. The observations are complementary to spectroscopy and allow characteristic length scales to be deduced. The measurement agrees well with detailed theoretical modelling. We anticipate that emerging technical improvements at free-electron laser facilities will enable the extraction of fully time-resolved real-space information in future experiments, either via temporal ghost-imaging analysis<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 40\" title=\"Ratner, D., Cryan, J. P., Lane, T. J., Li, S. &amp; Stupakov, G. Pump&#x2013;probe ghost imaging with SASE FELs. Phys. Rev. X 9, 011045 (2019).\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#ref-CR40\" id=\"ref-link-section-d31488144e2407\" rel=\"nofollow noopener\" target=\"_blank\">40<\/a> or by employing an X-ray pump X-ray probe set-up. Moreover, the use of hard X-rays for triggering dynamics, as demonstrated here, opens a path to the study of highly excited and otherwise inaccessible states of atoms and molecules and their dynamics. Following ionization by photons with energies that broadly range from the extreme ultraviolet to hard X-rays and beyond, Auger\u2013Meitner decay is an important process responsible for radiation damage. Detailed real-space measurements on isolated molecules will improve mechanistic understanding. This may benefit areas such as radiobiology<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 41\" title=\"Yokoya, A. &amp; Ito, T. Photon-induced Auger effect in biological systems: a review. Int. J. Radiat. Biol. 93, 743&#x2013;756 (2017).\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#ref-CR41\" id=\"ref-link-section-d31488144e2411\" rel=\"nofollow noopener\" target=\"_blank\">41<\/a>, radiation therapy<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 42\" title=\"Ku, A., Facca, V. J., Cai, Z. &amp; Reilly, R. M. Auger electrons for cancer therapy &#x2013; a review. EJNMMI Radiopharm. Chem. 4, 27 (2019).\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#ref-CR42\" id=\"ref-link-section-d31488144e2415\" rel=\"nofollow noopener\" target=\"_blank\">42<\/a> or single-particle imaging and serial femtosecond crystallography where radiation damage is responsible for the loss of contrast<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Neutze, R., Wouts, R., van der Spoel, D., Weckert, E. &amp; Hajdu, J. Potential for biomolecular imaging with femtosecond X-ray pulses. Nature 406, 752 (2000).\" href=\"#ref-CR43\" id=\"ref-link-section-d31488144e2419\">43<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Hau-Riege, S. P., London, R. A. &amp; Szoke, A. Dynamics of biological molecules irradiated by short x-ray pulses. Phys. Rev. E 69, 051906 (2004).\" href=\"#ref-CR44\" id=\"ref-link-section-d31488144e2419_1\">44<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Son, S.-K., Young, L. &amp; Santra, R. Impact of hollow-atom formation on coherent X-ray scattering at high intensity. Phys. Rev. A 83, 033402 (2011).\" href=\"#ref-CR45\" id=\"ref-link-section-d31488144e2419_2\">45<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Lorenz, U., Kabachnik, N. M., Weckert, E. &amp; Vartanyants, I. A. Impact of ultrafast electronic damage in single-particle X-ray imaging experiments. Phys. Rev. E 86, 051911 (2012).\" href=\"#ref-CR46\" id=\"ref-link-section-d31488144e2419_3\">46<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Abbey, B. et al. X-ray laser-induced electron dynamics observed by femtosecond diffraction from nanocrystals of buckminsterfullerene. Sci. Adv. 2, e1601186 (2016).\" href=\"#ref-CR47\" id=\"ref-link-section-d31488144e2419_4\">47<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Sun, Z., Fan, J., Li, H. &amp; Jiang, H. Current status of single particle imaging with X-ray lasers. Appl. Sci. 8, 132 (2018).\" href=\"#ref-CR48\" id=\"ref-link-section-d31488144e2419_5\">48<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"&#xD8;stlin, C., Timneanu, N., Caleman, C. &amp; Martin, A. V. Is radiation damage the limiting factor in high-resolution single particle imaging with X-ray free-electron lasers? Struct. Dyn. 6, 044103 (2019).\" href=\"#ref-CR49\" id=\"ref-link-section-d31488144e2419_6\">49<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 50\" title=\"Inoue, I. et al. Femtosecond reduction of atomic scattering factors triggered by intense X-ray pulse. Phys. Rev. Lett. 131, 163201 (2023).\" href=\"http:\/\/www.nature.com\/articles\/s41567-026-03363-8#ref-CR50\" id=\"ref-link-section-d31488144e2422\" rel=\"nofollow noopener\" target=\"_blank\">50<\/a>. Overall, the current experiment points to new and exciting opportunities for ultrafast real-space imaging of rapid electronic transformations in matter, which play an important role across chemistry, biology and physics.<\/p>\n","protected":false},"excerpt":{"rendered":"When matter is irradiated by light or subjected to other external perturbations, the electrons rearrange in response. Because&hellip;\n","protected":false},"author":2,"featured_media":1060074,"comment_status":"","ping_status":"","sticky":false,"template":"","format":"standard","meta":{"footnotes":"","_share_on_mastodon":"0"},"categories":[3845],"tags":[11701,15188,75385,49460,11700,11705,11704,3968,79453,11699,11702,106630,11703,74,70,11698,16,15],"class_list":["post-1060073","post","type-post","status-publish","format-standard","has-post-thumbnail","category-physics","tag-atomic","tag-atomic-and-molecular-interactions-with-photons","tag-attosecond-science","tag-chemical-physics","tag-classical-and-continuum-physics","tag-complex-systems","tag-condensed-matter-physics","tag-general","tag-imaging-techniques","tag-mathematical-and-computational-physics","tag-molecular","tag-molecular-dynamics","tag-optical-and-plasma-physics","tag-physics","tag-science","tag-theoretical","tag-uk","tag-united-kingdom"],"share_on_mastodon":{"url":"","error":""},"_links":{"self":[{"href":"https:\/\/www.europesays.com\/uk\/wp-json\/wp\/v2\/posts\/1060073","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/www.europesays.com\/uk\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/www.europesays.com\/uk\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/www.europesays.com\/uk\/wp-json\/wp\/v2\/users\/2"}],"replies":[{"embeddable":true,"href":"https:\/\/www.europesays.com\/uk\/wp-json\/wp\/v2\/comments?post=1060073"}],"version-history":[{"count":0,"href":"https:\/\/www.europesays.com\/uk\/wp-json\/wp\/v2\/posts\/1060073\/revisions"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/www.europesays.com\/uk\/wp-json\/wp\/v2\/media\/1060074"}],"wp:attachment":[{"href":"https:\/\/www.europesays.com\/uk\/wp-json\/wp\/v2\/media?parent=1060073"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/www.europesays.com\/uk\/wp-json\/wp\/v2\/categories?post=1060073"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/www.europesays.com\/uk\/wp-json\/wp\/v2\/tags?post=1060073"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}