• Snoke, D. Coherent questions. Nature 443, 403–404 (2006).

    Article 
    ADS 

    Google Scholar
     

  • Rezende, S. M. Theory of coherence in Bose–Einstein condensation phenomena in a microwave-driven interacting magnon gas. Phys. Rev. B 79, 174411 (2009).

    Article 
    ADS 

    Google Scholar
     

  • Einstein, A. Quantentheorie des einatomigen idealen Gases. Zweite Abhandlung (ed Simon, D.) 245–257 (John Wiley & Sons, 2005); https://doi.org/10.1002/3527608958.ch28.

  • Penrose, O. & Onsager, L. Bose–Einstein condensation and liquid helium. Phys. Rev. 104, 576–584 (1956).

    Article 
    ADS 

    Google Scholar
     

  • Anderson, M. H., Ensher, J. R., Matthews, M. R., Wieman, C. E. & Cornell, E. A. Observation of Bose–Einstein condensation in a dilute atomic vapor. Science 269, 198–201 (1995).

    Article 
    ADS 

    Google Scholar
     

  • Davis, K. B. et al. Bose–Einstein condensation in a gas of sodium atoms. Phys. Rev. Lett. 75, 3969–3973 (1995).

    Article 
    ADS 

    Google Scholar
     

  • Leggett, A. J. Quantum Liquids: Bose Condensation and Cooper Pairing in Condensed-Matter Systems (Oxford Univ. Press, 2006); https://doi.org/10.1093/acprof:oso/9780198526438.001.0001

  • Klaers, J., Schmitt, J., Vewinger, F. & Weitz, M. Bose–Einstein condensation of photons in an optical microcavity. Nature 468, 545–548 (2010).

    Article 
    ADS 

    Google Scholar
     

  • Balili, R., Hartwell, V., Snoke, D., Pfeiffer, L. & West, K. Bose–Einstein condensation of microcavity polaritons in a trap. Science 316, 1007–1010 (2007).

    Article 
    ADS 

    Google Scholar
     

  • Snoke, D. Spontaneous Bose coherence of excitons and polaritons. Science 298, 1368–1372 (2002).

    Article 
    ADS 

    Google Scholar
     

  • Snoke, D. W. & Girvin, S. M. Dynamics of phase coherence onset in Bose condensates of photons by incoherent phonon emission. J. Low Temp. Phys. 171, 1–12 (2013).

    Article 
    ADS 

    Google Scholar
     

  • Snoke, D. W., Wolfe, J. P. & Mysyrowicz, A. Evidence for Bose–Einstein condensation of excitons in Cu2O. Phys. Rev. B 41, 11171–11184 (1990).

    Article 
    ADS 

    Google Scholar
     

  • Fröhlich, H. Bose condensation of strongly excited longitudinal electric modes. Phys. Lett. A 26, 402–403 (1968).

    Article 
    ADS 

    Google Scholar
     

  • Andrews, M. R. et al. Observation of interference between two Bose condensates. Science 275, 637–641 (1997).

    Article 

    Google Scholar
     

  • Nowik-Boltyk, P., Dzyapko, O., Demidov, V. E., Berloff, N. G. & Demokritov, S. O. Spatially non-uniform ground state and quantized vortices in a two-component Bose–Einstein condensate of magnons. Sci. Rep. 2, 482 (2012).

    Article 
    ADS 

    Google Scholar
     

  • Deng, H., Weihs, G., Santori, C., Bloch, J. & Yamamoto, Y. Condensation of semiconductor microcavity exciton polaritons. Science 298, 199–202 (2002).

    Article 
    ADS 

    Google Scholar
     

  • Bozhko, D. A. et al. Supercurrent in a room-temperature Bose–Einstein magnon condensate. Nat. Phys. 12, 1057–1062 (2016).

    Article 

    Google Scholar
     

  • Snoke, D., Denev, S., Liu, Y., Pfeiffer, L. & West, K. Long-range transport in excitonic dark states in coupled quantum wells. Nature 418, 754–757 (2002).

    Article 
    ADS 

    Google Scholar
     

  • Butov, L. V., Gossard, A. C. & Chemla, D. S. Macroscopically ordered state in an exciton system. Nature 418, 751–754 (2002).

    Article 
    ADS 

    Google Scholar
     

  • Pitaevskii, L. & Stringari, S. Bose–Einstein Condensation and Superfluidity (Oxford Univ. Press, 2016); https://doi.org/10.1093/acprof:oso/9780198758884.001.0001

  • Mäkinen, J. T., Autti, S. & Eltsov, V. B. Magnon Bose–Einstein condensates: from time crystals and quantum chromodynamics to vortex sensing and cosmology. Appl. Phys. Lett. 124, 100502 (2024).

    Article 
    ADS 

    Google Scholar
     

  • Autti, S. et al. AC Josephson effect between two superfluid time crystals. Nat. Mater. 20, 171–174 (2020).

    Article 

    Google Scholar
     

  • Kreil, A. J. E. et al. Experimental observation of Josephson oscillations in a room-temperature Bose–Einstein magnon condensate. Phys. Rev. B 104, 144414 (2021).

    Article 
    ADS 

    Google Scholar
     

  • Demokritov, S. O. et al. Bose–Einstein condensation of quasi-equilibrium magnons at room temperature under pumping. Nature 443, 430–433 (2006).

    Article 
    ADS 

    Google Scholar
     

  • L’vov, V. S. et al. Bose–Einstein condensation in systems with flux equilibrium. Phys. Rev. B 109, 014301 (2024).

    Article 
    ADS 

    Google Scholar
     

  • Bunkov, Y. M. & Volovik, G. E. Bose–Einstein condensation of magnons in superfluid 3He. J. Low Temp. Phys. 150, 135–144 (2008).

    Article 
    ADS 

    Google Scholar
     

  • Schweizer, M. R. et al. Local temperature control of magnon frequency and direction of supercurrents in a magnon Bose–Einstein condensate. Appl. Phys. Lett. 124, 092402 (2024).

    Article 
    ADS 

    Google Scholar
     

  • Schweizer, M. R., Kreil, A. J. E., von Freymann, G., Hillebrands, B. & Serga, A. A. Confinement of Bose–Einstein magnon condensates in adjustable complex magnetization landscapes. J. Appl. Phys. 132, 183908 (2022).

    Article 
    ADS 

    Google Scholar
     

  • Bozhko, D. A. et al. Bogoliubov waves and distant transport of magnon condensate at room temperature. Nat. Commun. 10, 2460 (2019).

    Article 
    ADS 

    Google Scholar
     

  • Büttner, O. et al. Linear and nonlinear diffraction of dipolar spin waves in yttrium iron garnet films observed by space- and time-resolved Brillouin light scattering. Phys. Rev. B 61, 11576–11587 (2000).

    Article 
    ADS 

    Google Scholar
     

  • Kreil, A. J. E. et al. Tunable space-time crystal in room-temperature magnetodielectrics. Phys. Rev. B 100, 020406(R) (2019).

    Article 
    ADS 

    Google Scholar
     

  • Demokritov, S. O. Comment on ‘Bose–Einstein condensation and spin superfluidity of magnons in a perpendicularly magnetized yttrium iron garnet film’ (JETP Letters 112, 299 (2020)). JETP Lett. 115, 691–693 (2022).

    Article 
    ADS 

    Google Scholar
     

  • Pirro, P., Vasyuchka, V. I., Serga, A. A. & Hillebrands, B. Advances in coherent magnonics. Nat. Rev. Mater. 6, 1114–1135 (2021).

    Article 

    Google Scholar
     

  • Rezende, S. M. Fundamentals of Magnonics Vol. 969 (Springer, 2020); https://doi.org/10.1007/978-3-030-41317-0

  • Holstein, T. & Primakoff, H. Field dependence of the intrinsic domain magnetization of a ferromagnet. Phys. Rev. 58, 1098–1113 (1940).

    Article 
    ADS 

    Google Scholar
     

  • Demidov, V. E., Dzyapko, O., Demokritov, S. O., Melkov, G. A. & Slavin, A. N. Observation of spontaneous coherence in Bose–Einstein condensate of magnons. Phys. Rev. Lett. 100, 047205 (2008).

    Article 
    ADS 

    Google Scholar
     

  • Pethick, C. J. & Smith, H. Bose–Einstein Condensation in Dilute Gases (Cambridge Univ. Press, 2008); https://doi.org/10.1017/CBO9780511802850

  • Serga, A. A. et al. Bose–Einstein condensation in an ultra-hot gas of pumped magnons. Nat. Commun. 5, 3452 (2014).

    Article 
    ADS 

    Google Scholar
     

  • Schneider, M. et al. Bose–Einstein condensation of quasiparticles by rapid cooling. Nat. Nanotechnol. 15, 457–461 (2020).

    Article 
    ADS 

    Google Scholar
     

  • Gurevich, A. & Melkov, G. Magnetization Oscillations and Waves 1st edn (CRC Press, 1996).

  • Verba, R., Tiberkevich, V. & Slavin, A. Hamiltonian formalism for nonlinear spin wave dynamics under antisymmetric interactions: application to Dzyaloshinskii–Moriya interaction. Phys. Rev. B 99, 174431 (2019).

    Article 
    ADS 

    Google Scholar
     

  • Harris, C. R. et al. Array programming with NumPy. Nature 585, 357–362 (2020).

    Article 
    ADS 

    Google Scholar
     

  • Koster, M. Direct evaluation of coherence in a magnon Bose–Einstein condensate [Data set]. Zenodo https://doi.org/10.5281/zenodo.20135543 (2026).