{"id":927051,"date":"2026-07-11T04:28:40","date_gmt":"2026-07-11T04:28:40","guid":{"rendered":"https:\/\/www.europesays.com\/us\/927051\/"},"modified":"2026-07-11T04:28:40","modified_gmt":"2026-07-11T04:28:40","slug":"force-based-reading-and-writing-of-individual-single-atom-magnets","status":"publish","type":"post","link":"https:\/\/www.europesays.com\/us\/927051\/","title":{"rendered":"Force-based reading and writing of individual single-atom magnets"},"content":{"rendered":"<p>Herein, we utilize holmium (Ho) adatoms on MgO as single-atom magnet, a system that is regarded as a benchmark for single-atom memory<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Donati, F. &amp; Heinrich, A. A perspective on surface-adsorbed single atom magnets as atomic-scale magnetic memory. Appl. Phys. Lett. 119, 160503 (2021).\" href=\"#ref-CR5\" id=\"ref-link-section-d592369780e432\">5<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Natterer, F. D. et al. Reading and writing single-atom magnets. Nature 543, 226&#x2013;228 (2017).\" href=\"#ref-CR6\" id=\"ref-link-section-d592369780e432_1\">6<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Donati, F. et al. Magnetic remanence in single atoms. Science 352, 318&#x2013;321 (2016).\" href=\"#ref-CR7\" id=\"ref-link-section-d592369780e432_2\">7<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Sorokin, B. V. et al. The impact of lattice distortions on the magnetic stability of single atoms: Dy and Ho on BaO (100). Adv. Funct. Mater. 33, 2213951 (2023).\" href=\"#ref-CR8\" id=\"ref-link-section-d592369780e432_3\">8<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Donati, F. Magnetic relaxation mechanisms in Ho single atom magnets. J. Magn. 25, 441&#x2013;452 (2020).\" href=\"#ref-CR9\" id=\"ref-link-section-d592369780e432_4\">9<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Natterer, F. D., Donati, F., Patthey, F. &amp; Brune, H. Thermal and magnetic-field stability of holmium single-atom magnets. Phys. Rev. Lett. 121, 027201 (2018).\" href=\"#ref-CR10\" id=\"ref-link-section-d592369780e432_5\">10<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Donati, F. et al. Unconventional spin relaxation involving localized vibrational modes in Ho single-atom magnets. Phys. Rev. Lett. 124, 077204 (2020).\" href=\"#ref-CR11\" id=\"ref-link-section-d592369780e432_6\">11<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 12\" title=\"Bilgeri, T. Quantum dynamics in individual surface spins. PhD thesis, EPFL (2021).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR12\" id=\"ref-link-section-d592369780e435\" rel=\"nofollow noopener\" target=\"_blank\">12<\/a> (see also Figs.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S1<\/a> and <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S2<\/a> in the supporting information). A Ho adatom adsorbed on the Oxygen top site (Hotop) has been experimentally characterized using X-ray absorption spectroscopy (XAS), X-ray magnetic circular dichroism (XMCD) and spin-polarized scanning tunneling microscopy (SP-STM)<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 10\" title=\"Natterer, F. D., Donati, F., Patthey, F. &amp; Brune, H. Thermal and magnetic-field stability of holmium single-atom magnets. Phys. Rev. Lett. 121, 027201 (2018).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR10\" id=\"ref-link-section-d592369780e447\" rel=\"nofollow noopener\" target=\"_blank\">10<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 11\" title=\"Donati, F. et al. Unconventional spin relaxation involving localized vibrational modes in Ho single-atom magnets. Phys. Rev. Lett. 124, 077204 (2020).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR11\" id=\"ref-link-section-d592369780e450\" rel=\"nofollow noopener\" target=\"_blank\">11<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 13\" title=\"Singha, A. et al. Mapping orbital-resolved magnetism in single lanthanide atoms. ACS Nano 15, 16162&#x2013;16171 (2021).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR13\" id=\"ref-link-section-d592369780e453\" rel=\"nofollow noopener\" target=\"_blank\">13<\/a>. As shown in Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1<\/a>(a,b), Hotop has a ligand field with C4v symmetry, which effectively suppresses direct transitions between the ground state and the metastable state (Ho\u2191 and Ho\u2193) due to the strong uniaxial anisotropy, and thus gives rise to a long-lived magnetic quantum state with two configurations, Ho\u2191 and Ho\u2193 (see also Section 3 in the Supporting Information)<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 4\" title=\"Forrester, P. R. et al. Quantum state manipulation of single atom magnets using the hyperfine interaction. Phys. Rev. B 100, 180405 (2019).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR4\" id=\"ref-link-section-d592369780e483\" rel=\"nofollow noopener\" target=\"_blank\">4<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 6\" title=\"Natterer, F. D. et al. Reading and writing single-atom magnets. Nature 543, 226&#x2013;228 (2017).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR6\" id=\"ref-link-section-d592369780e486\" rel=\"nofollow noopener\" target=\"_blank\">6<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 10\" title=\"Natterer, F. D., Donati, F., Patthey, F. &amp; Brune, H. Thermal and magnetic-field stability of holmium single-atom magnets. Phys. Rev. Lett. 121, 027201 (2018).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR10\" id=\"ref-link-section-d592369780e489\" rel=\"nofollow noopener\" target=\"_blank\">10<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 12\" title=\"Bilgeri, T. Quantum dynamics in individual surface spins. PhD thesis, EPFL (2021).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR12\" id=\"ref-link-section-d592369780e492\" rel=\"nofollow noopener\" target=\"_blank\">12<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 14\" title=\"Chen, Y., Liu, J., Ju, M., Qiu, R. &amp; Yuan, H. Magnetic stability of Ce and Nd single atom magnets on insulating MgO\/Ag (100). Phys. Rev. B 107, 214444 (2023).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR14\" id=\"ref-link-section-d592369780e495\" rel=\"nofollow noopener\" target=\"_blank\">14<\/a>. In Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1<\/a>(b), under an external magnetic field of 3.0 T, the Ho state aligned with the magnetic field has an energy preference of approximately 3.5meV over the opposite state. Notably, spin switching at zero magnetic field is prevented by the hyperfine interaction<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 4\" title=\"Forrester, P. R. et al. Quantum state manipulation of single atom magnets using the hyperfine interaction. Phys. Rev. B 100, 180405 (2019).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR4\" id=\"ref-link-section-d592369780e502\" rel=\"nofollow noopener\" target=\"_blank\">4<\/a>. These properties make Hotop adatoms promising candidates for the smallest stable magnetic bits. In previous SP-STM experiments, applying a bias voltage above \u00a0~\u00a0100 mV allowed tunneling current to induce switching between Ho\u2191 and Ho\u2193 by overcoming the energy barrier <a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 6\" title=\"Natterer, F. D. et al. Reading and writing single-atom magnets. Nature 543, 226&#x2013;228 (2017).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR6\" id=\"ref-link-section-d592369780e515\" rel=\"nofollow noopener\" target=\"_blank\">6<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 10\" title=\"Natterer, F. D., Donati, F., Patthey, F. &amp; Brune, H. Thermal and magnetic-field stability of holmium single-atom magnets. Phys. Rev. Lett. 121, 027201 (2018).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR10\" id=\"ref-link-section-d592369780e518\" rel=\"nofollow noopener\" target=\"_blank\">10<\/a>. Compared to Hotop, Hobridge is located in a crystal field with C2v symmetry, which represents a lower-symmetry environment (see Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S3<\/a>). As depicted in Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S3<\/a>b, this reduced symmetry leads to strongly mixed quantum states even under an applied magnetic field of 3.0 T, thereby shortening the magnetic lifetime<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 12\" title=\"Bilgeri, T. Quantum dynamics in individual surface spins. PhD thesis, EPFL (2021).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR12\" id=\"ref-link-section-d592369780e540\" rel=\"nofollow noopener\" target=\"_blank\">12<\/a>.<\/p>\n<p><b id=\"Fig1\" class=\"c-article-section__figure-caption\" data-test=\"figure-caption-text\">Fig. 1: Energy diagram of holmium adatom on MgO and experimental set-up to read and write the magnetic states of Ho adatoms.<\/b><img decoding=\"async\" aria-describedby=\"figure-1-desc\" src=\"https:\/\/www.europesays.com\/us\/wp-content\/uploads\/2026\/07\/41467_2026_74922_Fig1_HTML.png\" alt=\"Fig. 1: Energy diagram of holmium adatom on MgO and experimental set-up to read and write the magnetic states of Ho adatoms.\" loading=\"lazy\" width=\"685\" height=\"336\"\/><\/p>\n<p><b>a<\/b> Three-dimensional views of the adsorption configuration of a Ho adatom at the top site in the high-symmetry C4v position on MgO\/Ag(100), together with top and side views of the same configuration on MgO. Green ball: Ho atom, orange ball: Mg atom, red ball: O atom, gray ball: Ag atom. <b>b<\/b> Calculated eigenvalues of top-site Ho in high-symmetry C4v on MgO\/Ag(100) at B\u00a0=\u00a03.0T. The large uniaxial crystal field, with only minor transverse components, suppresses efficient direct transitions between the ground and metastable states (Ho\u2191 and Ho\u2193). The red and blue arrows in (<b>b<\/b>) indicate the Ho\u2191 and Ho\u2193. The inset shows a magnified view of the low-energy region. <b>c<\/b> Schematic of the force-based reading and writing of single atom magnets.<\/p>\n<p>To read and write the spin orientation of a Ho adatom adsorbed on an MgO surface, we employed magnetic exchange force microscopy (MExFM)<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Kaiser, U., Schwarz, A. &amp; Wiesendanger, R. Magnetic exchange force microscopy with atomic resolution. Nature 446, 522&#x2013;525 (2007).\" href=\"#ref-CR15\" id=\"ref-link-section-d592369780e608\">15<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Schmidt, R. et al. Quantitative measurement of the magnetic exchange interaction across a vacuum gap. Phys. Rev. Lett. 106, 257202 (2011).\" href=\"#ref-CR16\" id=\"ref-link-section-d592369780e608_1\">16<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Hauptmann, N. et al. Quantifying exchange forces of a spin spiral on the atomic scale. Nat. Commun. 11, 1197 (2020).\" href=\"#ref-CR17\" id=\"ref-link-section-d592369780e608_2\">17<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Hauptmann, N., Gerritsen, J. W., Wegner, D. &amp; Khajetoorians, A. A. Sensing noncollinear magnetism at the atomic scale combining magnetic exchange and spin-polarized imaging. Nano Lett. 17, 5660&#x2013;5665 (2017).\" href=\"#ref-CR18\" id=\"ref-link-section-d592369780e608_3\">18<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Pielmeier, F. &amp; Giessibl, F. J. Spin resolution and evidence for superexchange on NiO (001) observed by force microscopy. Phys. Rev. Lett. 110, 266101 (2013).\" href=\"#ref-CR19\" id=\"ref-link-section-d592369780e608_4\">19<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 20\" title=\"Adachi, Y. et al. Probing the spin spiral in Fe chains on Ir (001) using magnetic exchange force microscopy. Nanoscale Horiz. 10, 1653&#x2013;1659 (2025).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR20\" id=\"ref-link-section-d592369780e611\" rel=\"nofollow noopener\" target=\"_blank\">20<\/a> using a length extension resonator (LER) operated in the frequency modulation mode. In this mode, the frequency shift (\u0394f) allows the determination of the force between the tip and the sample from the attractive regime to the repulsive regime (see also the Supporting Information)<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 21\" title=\"Ternes, M. et al. Interplay of conductance, force, and structural change in metallic point contacts. Phys. Rev. Lett. 106, 016802 (2011).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR21\" id=\"ref-link-section-d592369780e618\" rel=\"nofollow noopener\" target=\"_blank\">21<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 22\" title=\"Sader, J. E. &amp; Jarvis, S. P. Accurate formulas for interaction force and energy in frequency modulation force spectroscopy. Appl. Phys. Lett. 84, 1801&#x2013;1803 (2004).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR22\" id=\"ref-link-section-d592369780e621\" rel=\"nofollow noopener\" target=\"_blank\">22<\/a>. Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1<\/a>c illustrates the experimental setup. A tungsten tip functionalized with cobalt (Co) atoms at its apex was mounted on a LER and oscillated at its resonance frequency f0\u00a0~\u00a01 MHz with an amplitude of A\u00a0=\u00a065pm. It was then used to probe a Ho adatom under near-zero bias voltage at 4.5K under an external magnetic field of 3.0T (see Figs.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S4<\/a> and <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S5<\/a> in the Supporting Information for the preparation of the Co tip). The magnetization of the Co tip aligns with an external magnetic field due to the superparamagnetic nature of the Co cluster<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 10\" title=\"Natterer, F. D., Donati, F., Patthey, F. &amp; Brune, H. Thermal and magnetic-field stability of holmium single-atom magnets. Phys. Rev. Lett. 121, 027201 (2018).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR10\" id=\"ref-link-section-d592369780e642\" rel=\"nofollow noopener\" target=\"_blank\">10<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 23\" title=\"Phark, S.-h., Fischer, J. A., Corbetta, M., Sander, D., Kirschner, J. Superparamagnetic response of Fe-coated W tips in spin-polarized scanning tunneling microscopy. Appl. Phys. Lett. 103(3) (2013).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR23\" id=\"ref-link-section-d592369780e645\" rel=\"nofollow noopener\" target=\"_blank\">23<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 24\" title=\"Phark, S. -h &amp; Sander, D. Spin-polarized scanning tunneling microscopy with quantitative insights into magnetic probes. Nano Convergence 4, 8 (2017).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR24\" id=\"ref-link-section-d592369780e648\" rel=\"nofollow noopener\" target=\"_blank\">24<\/a>.<\/p>\n<p>Here, we present the experimental results of force-based reading and writing Ho\u2193 and Ho\u2191. Figure\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>a shows a typical \u0394f as a function of time, measured on top of Hotop while varying the bias voltage (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>b) and the tip\u2013sample distances (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>c). First, the lateral position of the tip was fixed above the center of Hotop. At V\u00a0=\u00a0120 mV, the Ho spin undergoes current-induced switching. The spin state was then stabilized in the desired configuration (in this case, Ho\u2193) by lowering the bias voltage from V = 120 mV to V = 200 \u03bcV, well below the threshold for current-induced spin switching (0s \u2264t\u2264 4s). Once set, the Ho\u2193 state was measured via \u0394f during the tip approach (6s \u2264t\u2264 33s). To switch the spin state from Ho\u2193 to Ho\u2191, the tip was brought to a specific distance (z = \u00a0\u2212\u00a00.13 nm), exceeding the threshold distance required to induce spin switching (z = 0.00 nm is the point-contact distance, see also Methods). The spin state of the Hotop was then probed at this distance with a fixed probe time of 10 s (33s \u2264t\u2264 43s), and the transition from Ho\u2193 to Ho\u2191 was detected as a sudden jump in \u0394f, indicated by the black arrow in Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>a. Afterward, the Ho\u2191 was measured from \u0394f by retracting the tip to its original tip\u2013sample distances (43s \u2264t\u2264 70s). Finally, the bias voltage was restored from V = 200\u03bcV to its original value of V = 120 mV (72s \u2264t\u2264 76s; see also Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S6<\/a> for the tunneling current simultaneously recorded with \u0394f in Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>a). In Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>a, the minimum of \u0394f obtained on top of Ho\u2191 is smaller than that for Ho\u2193, demonstrating that the two spin states can be successfully read out by MExFM, and that the Ho spin can be written from Ho\u2193 to Ho\u2191 by approaching the tip.<\/p>\n<p><b id=\"Fig2\" class=\"c-article-section__figure-caption\" data-test=\"figure-caption-text\">Fig. 2: Reading and writing of Ho spin on MgO using MExFM.<\/b><img decoding=\"async\" aria-describedby=\"figure-2-desc\" src=\"https:\/\/www.europesays.com\/us\/wp-content\/uploads\/2026\/07\/41467_2026_74922_Fig2_HTML.png\" alt=\"Fig. 2: Reading and writing of Ho spin on MgO using MExFM.\" loading=\"lazy\" width=\"685\" height=\"1048\"\/><\/p>\n<p><b>a<\/b>\u2013<b>c<\/b> \u0394f(t) spectra measured on top of Hotop while varying the bias voltage and the tip height. <b>a<\/b> Time evolution of \u0394f, <b>b<\/b> applied bias voltage, and <b>c<\/b> tip-sample distance. The blue and red in (<b>a<\/b>) indicate the Ho\u2193 and Ho\u2191. At 33s \u2264t\u2264 43s, the transition from the Ho\u2193 to Ho\u2191 state can be detected by a sudden jump in \u0394f(t), marked by the black arrow in (<b>a<\/b>).<\/p>\n<p>To discuss the reading mechanism of Ho\u2191 and Ho\u2193, here we show the short-range force and magnetic exchange force recorded on top of Hotop (see Figs.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S7<\/a> and <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S8<\/a> for full data sets and dissipation). Figure\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3<\/a>a shows the \u0394f as a function of tip\u2013sample distance (\u0394f(z)), recorded on top of Ho\u2191, Ho\u2193 and MgO (\u0394fHo\u2191(z), \u0394fHo\u2193(z) and \u0394fMgO(z)). Both \u0394fHo\u2191(z) and \u0394fHo\u2193(z) include a long-range component from the MgO substrate. Therefore, \u0394fMgO(z) was subtracted from \u0394fHo\u2191(z) and \u0394fHo\u2193(z) to eliminate the background component. As shown in Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3<\/a>b, the short-range force on Ho\u2191 and Ho\u2193 (FHo\u2191(z) and FHo\u2193(z)) were calculated from the background subtracted \u0394f(z) <a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 22\" title=\"Sader, J. E. &amp; Jarvis, S. P. Accurate formulas for interaction force and energy in frequency modulation force spectroscopy. Appl. Phys. Lett. 84, 1801&#x2013;1803 (2004).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR22\" id=\"ref-link-section-d592369780e989\" rel=\"nofollow noopener\" target=\"_blank\">22<\/a>. In Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3<\/a>b, as the tip approaches the Ho\u2191 (Ho\u2193) adatom, FHo\u2191(z) (FHo\u2193(z)) exhibits FHo\u2191 (z\u00a0=\u00a00.00 nm) \u00a0=\u00a0\u2212\u00a01.60 nN (FHo\u2193 (z\u00a0=\u00a00.00 nm) \u00a0=\u00a0\u2212\u00a01.55 nN), indicating ferromagnetic coupling between the Co tip and the Ho adatom at this distance. Reducing z further decreases the attractive force to FHo\u2191 (z\u00a0=\u00a0\u2212\u00a00.08 nm) \u00a0=\u00a0\u2212\u00a01.25 nN (FHo\u2193 (z\u00a0=\u00a0\u2212\u00a00.08 nm) \u00a0=\u00a0\u2212\u00a01.25 nN). As z is reduced even more, the attraction increases, reaching FHo\u2191 (z\u00a0=\u00a0\u2212\u00a00.10\u2009nm) \u00a0=\u00a0\u2212\u00a01.40 nN (FHo\u2193 (z\u00a0=\u00a0\u2212\u00a00.10 nm) \u00a0=\u00a0\u2212\u00a01.50 nN), indicating antiferromagnetic coupling at this distance. The inset in Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3<\/a>b shows the magnetic exchange force, FMExFM(z), derived by subtracting FHo\u2193(z) from FHo\u2191(z). As the tip approaches, a transition from ferromagnetic to antiferromagnetic coupling can be observed (ferromagnetic: FMExFM(z)\u00a0&lt;\u00a00 and antiferromagnetic: FMExFM(z)\u00a0&gt;\u00a00).<\/p>\n<p><b id=\"Fig3\" class=\"c-article-section__figure-caption\" data-test=\"figure-caption-text\">Fig. 3: Probing Ho\u2191 and Ho\u2193 using MExFM.<\/b><img decoding=\"async\" aria-describedby=\"figure-3-desc\" src=\"https:\/\/www.europesays.com\/us\/wp-content\/uploads\/2026\/07\/41467_2026_74922_Fig3_HTML.png\" alt=\"Fig. 3: Probing Ho&#x2191; and Ho&#x2193; using MExFM.\" loading=\"lazy\" width=\"685\" height=\"909\"\/><\/p>\n<p><b>a<\/b> Frequency shift obtained on top of the Ho\u2191 (\u0394fHo\u2191(z), red solid curve), Ho\u2193 (\u0394fHo\u2193(z), blue solid curve) and MgO (\u0394fMgO(z), orange solid curve). Measurement conditions: V\u00a0=\u00a0200\u03bcV. <b>b<\/b> Short-range forces obtained on top of Ho\u2191 (FHo\u2191(z), red solid curve) and Ho\u2193 (FHo\u2193(z), blue solid curve). Inset in (<b>b<\/b>) shows magnetic exchange force FMExFM(z) obtained on top of the Ho adatom. The gray dotted line is a guide for the eye, indicating FMExFM(z) = 0.<\/p>\n<p>The ferromagnetic coupling between the highly localized 4f electrons in the Ho adatom and the 3d electrons in the Co tip can be explained by two contributions: first, an intra-atomic ferromagnetic coupling between the 4f and 5d (or 6s) spins within the Ho adatom, and second, an inter-atomic ferromagnetic coupling between the 5d (or 6s) electrons of Ho and the 3d electrons of the Co atom<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 10\" title=\"Natterer, F. D., Donati, F., Patthey, F. &amp; Brune, H. Thermal and magnetic-field stability of holmium single-atom magnets. Phys. Rev. Lett. 121, 027201 (2018).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR10\" id=\"ref-link-section-d592369780e1251\" rel=\"nofollow noopener\" target=\"_blank\">10<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 25\" title=\"Pivetta, M. et al. Measuring the intra-atomic exchange energy in rare-earth adatoms. Phys. Rev. X 10, 031054 (2020).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR25\" id=\"ref-link-section-d592369780e1254\" rel=\"nofollow noopener\" target=\"_blank\">25<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 26\" title=\"Singha, A. et al. Spin excitations in a 4f-3d heterodimer on MgO. Phys. Rev. Lett. 121, 257202 (2018).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR26\" id=\"ref-link-section-d592369780e1257\" rel=\"nofollow noopener\" target=\"_blank\">26<\/a>. The transition from ferromagnetic to antiferromagnetic coupling is reported for the interaction between the 5d electrons of Ta and the 3d electrons of Fe<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 27\" title=\"Wieser, R. et al. A theoretical study of the dynamical switching of a single spin by exchange forces. N. J. Phys. 15, 013011 (2013).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR27\" id=\"ref-link-section-d592369780e1268\" rel=\"nofollow noopener\" target=\"_blank\">27<\/a>. The transition from ferromagnetic to antiferromagnetic coupling is reminiscent of the Bethe-Slater curve. The antiferromagnetic coupling between the highly localized 4f electrons in the Ho adatom and the 3d electrons in the Co tip can be explained by an intra-atomic ferromagnetic coupling between the 4f and 5d (or 6s) electrons within the Ho adatom, and an inter-atomic antiferromagnetic coupling between the 5d (or 6s) electrons of Ho and the 3d electrons of the Co atom.<\/p>\n<p>As we discussed in Figs.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>(a\u2013c), the Ho spin can be switched from Ho\u2193 to Ho\u2191 by approaching the tip. In Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig4\" rel=\"nofollow noopener\" target=\"_blank\">4<\/a>(a), we further demonstrate bidirectional switching between Ho\u2193 and Ho\u2191 induced by the tip approach. Firstly, the tip was brought above the center of Hotop, and the bias voltage was set to V = 200\u03bcV to avoid spin switching induced by the tunneling current. Then, the tip-sample distance was adjusted to values exceeding the threshold distance required to induce spin switching via tip approach. As shown in Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig4\" rel=\"nofollow noopener\" target=\"_blank\">4<\/a>(a), the spin switching was monitored in real time by recording the \u0394f while keeping the tip height constant. Telegraph noise between the two states was observed, indicating bidirectional spin switching between Ho\u2191 and Ho\u2193. Therefore, due to the bidirectional spin switching, we can control the spin not only from Ho\u2193 to Ho\u2191 (as demonstrated in Figs. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>(a\u2013c)) but also from Ho\u2191 to Ho\u2193, as shown in Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S9<\/a>. Moreover, the observation of the bidirectional spin switching rules out exchange forces as the driving mechanism for spin switching<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 28\" title=\"Schmidt, R., Schwarz, A. &amp; Wiesendanger, R. Magnetization switching utilizing the magnetic exchange interaction. Phys. Rev. B 86, 174402 (2012).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR28\" id=\"ref-link-section-d592369780e1359\" rel=\"nofollow noopener\" target=\"_blank\">28<\/a>. Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig4\" rel=\"nofollow noopener\" target=\"_blank\">4<\/a>b summarizes the switching rates between Ho\u2191 and Ho\u2193 with the results of spin switching induced by the tunneling current (see also Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S10<\/a>). In Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig4\" rel=\"nofollow noopener\" target=\"_blank\">4<\/a>b, the spin switching induced by tip approach decays more rapidly along with distance than that induced by the tunneling current.<\/p>\n<p><b id=\"Fig4\" class=\"c-article-section__figure-caption\" data-test=\"figure-caption-text\">Fig. 4: Switching between Ho\u2191 and Ho\u2193.<\/b><img decoding=\"async\" aria-describedby=\"figure-4-desc\" src=\"https:\/\/www.europesays.com\/us\/wp-content\/uploads\/2026\/07\/41467_2026_74922_Fig4_HTML.png\" alt=\"Fig. 4: Switching between Ho&#x2191; and Ho&#x2193;.\" loading=\"lazy\" width=\"685\" height=\"688\"\/><\/p>\n<p><b>a<\/b> Telegraph signal due to the force-induced magnetic switching between Ho\u2191 and Ho\u2193. The blue and red indicate the Ho\u2193 and Ho\u2191. Measurement conditions: constant-height mode, V = 1.0\u2009mV, z = \u221216.0\u2009pm. <b>b<\/b> Spin switching rate as a function of tip-sample distances. The exponential fits are represented by the solid, dashed and dotted lines. Measurement conditions: constant height mode, V = 1.0\u2009mV for force induced spin switching and V = 150\u2009mV for current induced spin switching.<\/p>\n<p>To discuss the writing mechanism of Ho\u2191 and Ho\u2193, the tip was positioned at the center of Hotop and approached closer than the spin-switching distance. As shown in Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S11<\/a>, this approach induced a lateral displacement of Hotop to the bridge site, resulting in the formation of Hobridge. These results demonstrate that lateral displacement from Hotop to Hobridge can be induced even when the tip approaches the center of Hotop at a specific tip-sample distance. Because the Co tip has an asymmetric shape (see Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S12<\/a>(a\u2013d)), multiple Co atoms are expected to come into contact with the Ho adatom during relaxation, thereby inducing lateral displacement. Notably, once the Ho adatom relocates to the Hobridge, it rarely returns to Hotop.<\/p>\n<p>The lateral displacement from Hotop to Hobridge, in turn, strongly influences the spin state of the Ho adatom. Specifically, as shown in Figs.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1<\/a>b and <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S3<\/a>b, transitions between Ho\u2191 and Ho\u2193 are suppressed for Hotop, whereas the reduced-symmetry Hobridge exhibits strongly mixed quantum states, enabling direct transitions between Ho\u2191 and Ho\u2193 even under an applied magnetic field of 3.0 T (see also Section 3 in the Supporting Information)<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 12\" title=\"Bilgeri, T. Quantum dynamics in individual surface spins. PhD thesis, EPFL (2021).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR12\" id=\"ref-link-section-d592369780e1498\" rel=\"nofollow noopener\" target=\"_blank\">12<\/a>. The importance of crystal-field symmetry for magnetic stability has been widely reported in other systems<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 8\" title=\"Sorokin, B. V. et al. The impact of lattice distortions on the magnetic stability of single atoms: Dy and Ho on BaO (100). Adv. Funct. Mater. 33, 2213951 (2023).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR8\" id=\"ref-link-section-d592369780e1503\" rel=\"nofollow noopener\" target=\"_blank\">8<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"H&#xFC;bner, C., Baxevanis, B., Khajetoorians, A. A. &amp; Pfannkuche, D. Symmetry effects on the spin switching of adatoms. Phys. Rev. B 90, 155134 (2014).\" href=\"#ref-CR29\" id=\"ref-link-section-d592369780e1506\">29<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Miyamachi, T. et al. Stabilizing the magnetic moment of single holmium atoms by symmetry. Nature 503, 242&#x2013;246 (2013).\" href=\"#ref-CR30\" id=\"ref-link-section-d592369780e1506_1\">30<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 31\" title=\"Phark, S.-h. et al. Spin-state engineering of single titanium adsorbates on ultrathin magnesium oxide. Nat. Commun. (2026).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR31\" id=\"ref-link-section-d592369780e1509\" rel=\"nofollow noopener\" target=\"_blank\">31<\/a>. We therefore propose that spin-switching of a single atom is driven by strain-induced state mixing using an atomic probe. The spin switching between Ho\u2191 and Ho\u2193 occurs when Hotop moves toward Hobridge but does not fully reach it, due to the force exerted by the Co tip. This is further confirmed as in Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S13<\/a>, which shows that the spin switching distance varies depending on the tip shape, but spin switching always occurs at distances shorter than the point-contact distance. Although the spin switching distance depends on the tip shape, once an appropriate tip is prepared, the spin orientation and switching rate can be controlled by adjusting the tip-sample distance, as demonstrated in Figs.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>, <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S9<\/a>, and <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig4\" rel=\"nofollow noopener\" target=\"_blank\">4<\/a>(a,b), thereby enabling controlled writing of a single-atom magnet using force.<\/p>\n<p>Beyond merely reading Ho\u2193 and Ho\u2191 through its spectroscopy capabilities, MExFM enables imaging of Ho\u2193 and Ho\u2191. As shown in Figs.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">5<\/a>(a,b), this is achieved by scanning the tip horizontally at a constant height while recording \u0394f. The tip-sample distance is set to be approximately 20 pm larger than the point-contact distance to avoid spin switching. In Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">5<\/a>a, both Ho adatoms appear in the Ho\u2191 state. To demonstrate the spin-readout capability, we switched the spin state of the left Ho adatom from Ho\u2191 to Ho\u2193 and imaged the same area again using the same tip in Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">5<\/a>a. In Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">5<\/a>b, the left Ho adatom appears in the Ho\u2193 state, whereas the right one remains in the Ho\u2191 state. In Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">5<\/a>c, the contrast changed only for the spin switched Ho atom, while the unswitched reference Ho atom remained identical. This observation allows us to rule out the possibility of a tip change during the Ho spin manipulation. In Figs.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">5<\/a>a and <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">5<\/a>b, based on the time required to image a single Ho, the Ho spin can be stably read out for at least 218s. Consequently, our force-based approach remains intrinsically non-invasive during readout. Therefore, we successfully demonstrated the readout of Ho adatom spin orientations in both configurations using MExFM.<\/p>\n<p><b id=\"Fig5\" class=\"c-article-section__figure-caption\" data-test=\"figure-caption-text\">Fig. 5: Imaging Ho\u2191 and Ho\u2193 using MExFM.<\/b><img decoding=\"async\" aria-describedby=\"figure-5-desc\" src=\"https:\/\/www.europesays.com\/us\/wp-content\/uploads\/2026\/07\/41467_2026_74922_Fig5_HTML.png\" alt=\"Fig. 5: Imaging Ho&#x2191; and Ho&#x2193; using MExFM.\" loading=\"lazy\" width=\"685\" height=\"588\"\/><\/p>\n<p><b>a<\/b> \u0394f image of two Ho adatoms, both Ho adatom in the Ho\u2191. Imaging parameters: constant height mode, V = 200\u03bcV, scan size 1.2\u2009nm \u00a0\u00d7 7.0\u2009nm. <b>b<\/b> \u0394f image of the same area in (<b>a<\/b>), after the left Ho adatom was manipulated from Ho\u2191 to Ho\u2193. Imaging parameters: constant height mode, V = 200\u03bcV, scan size 1.2\u2009nm \u00a0\u00d7 7.0 nm. <b>a<\/b> and <b>b<\/b> were obtained at the same tip height. <b>c<\/b> Line profiles obtained above the Ho adatoms by the dotted curve for (<b>a<\/b>) and the solid curve for (<b>b<\/b>). The blue and red indicate the Ho\u2193 and Ho\u2191. The positions of the line profiles are indicated by the dotted lines in (<b>a<\/b>) and (<b>b<\/b>).<\/p>\n<p>In this work, we show that the spin orientation of a single-atom magnet can be read and written using force, specifically by means of MExFM. We demonstrate this by probing individual Ho adatoms on MgO thin films, distinguishing between the Ho\u2191 and Ho\u2193 states through exchange forces, and controlling these states by adjusting the tip-sample distance to induce lateral displacement and manipulate the adsorption-site symmetry. The method of controlling the spin by manipulating the adsorption-site symmetry, as proposed in this study, is not specific to our system<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 31\" title=\"Phark, S.-h. et al. Spin-state engineering of single titanium adsorbates on ultrathin magnesium oxide. Nat. Commun. (2026).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR31\" id=\"ref-link-section-d592369780e1694\" rel=\"nofollow noopener\" target=\"_blank\">31<\/a>. This opens new possibilities for manipulating spin states via the surrounding atomic environment. Spin detection and manipulation of 4f-electron systems by a nondissipative force, unlike electric currents, is expected to lead to the realization of long spin coherence times, which are critical for quantum information processing<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Sellies, L. et al. Single-molecule electron spin resonance by means of atomic force microscopy. Nature 624, 64&#x2013;68 (2023).\" href=\"#ref-CR32\" id=\"ref-link-section-d592369780e1701\">32<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Czap, G. et al. Direct electrical access to the spin manifolds of individual lanthanide atoms. ACS Nano 19, 3705&#x2013;3713 (2025).\" href=\"#ref-CR33\" id=\"ref-link-section-d592369780e1701_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=\"Reale, S. et al. Electrically driven spin resonance of 4f electrons in a single atom on a surface. Nat. Commun. 15, 5289 (2024).\" href=\"http:\/\/www.nature.com\/articles\/s41467-026-74922-z#ref-CR34\" id=\"ref-link-section-d592369780e1704\" rel=\"nofollow noopener\" target=\"_blank\">34<\/a>.<\/p>\n","protected":false},"excerpt":{"rendered":"Herein, we utilize holmium (Ho) adatoms on MgO as single-atom magnet, a system that is regarded as a&hellip;\n","protected":false},"author":3,"featured_media":927052,"comment_status":"","ping_status":"","sticky":false,"template":"","format":"standard","meta":{"footnotes":"","_share_on_mastodon":"0"},"categories":[25],"tags":[49530,10046,51052,27579,10047,492,107089,159,27578,67,132,68],"class_list":["post-927051","post","type-post","status-publish","format-standard","has-post-thumbnail","category-physics","tag-characterization-and-analytical-techniques","tag-humanities-and-social-sciences","tag-imaging-techniques","tag-interfaces-and-thin-films","tag-multidisciplinary","tag-physics","tag-scanning-probe-microscopy","tag-science","tag-surfaces","tag-united-states","tag-unitedstates","tag-us"],"share_on_mastodon":{"url":"https:\/\/pubeurope.com\/@us\/116899462015404733","error":""},"_links":{"self":[{"href":"https:\/\/www.europesays.com\/us\/wp-json\/wp\/v2\/posts\/927051","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/www.europesays.com\/us\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/www.europesays.com\/us\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/www.europesays.com\/us\/wp-json\/wp\/v2\/users\/3"}],"replies":[{"embeddable":true,"href":"https:\/\/www.europesays.com\/us\/wp-json\/wp\/v2\/comments?post=927051"}],"version-history":[{"count":0,"href":"https:\/\/www.europesays.com\/us\/wp-json\/wp\/v2\/posts\/927051\/revisions"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/www.europesays.com\/us\/wp-json\/wp\/v2\/media\/927052"}],"wp:attachment":[{"href":"https:\/\/www.europesays.com\/us\/wp-json\/wp\/v2\/media?parent=927051"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/www.europesays.com\/us\/wp-json\/wp\/v2\/categories?post=927051"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/www.europesays.com\/us\/wp-json\/wp\/v2\/tags?post=927051"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}