Mandel, L. & Wolf, E. Optical Coherence and Quantum Optics (Cambridge Univ. Press, 1995).
Cong, Ok. et al. Dicke superradiance in solids. J. Choose. Soc. Am. B 33, C80–C101 (2016).
Reasonably, S. R., Scholes, G. D. & Chen, L. X. From coherence to operate: exploring the connection in chemical techniques. Acc. Chem. Res. 57, 2620–2630 (2024).
Deng, H., Haug, H. & Yamamoto, Y. Exciton–polariton Bose–Einstein condensation. Rev. Mod. Phys. 82, 1489–1537 (2010).
Strogatz, S. Sync: The Rising Science of Spontaneous Order (Penguin, 2004).
Bloch, J., Cavalleri, A., Galitski, V., Hafezi, M. & Rubio, A. Strongly correlated electron–photon techniques. Nature 606, 41–48 (2022).
Zhu, B. et al. Synchronization of interacting quantum dipoles. New J. Phys. 17, 083063 (2015).
Streltsov, A., Adesso, G. & Plenio, M. B. Colloquium: quantum coherence as a useful resource. Rev. Mod. Phys. 89, 041003 (2017).
Roy, R. & Thornburg, Ok. S. Jr Experimental synchronization of chaotic lasers. Phys. Rev. Lett. 72, 2009 (1994).
Cirac, J. I. Interplay of a two-level atom with a cavity mode within the bad-cavity restrict. Phys. Rev. A 46, 4354 (1992).
Masson, S. J. & Asenjo-Garcia, A. Universality of Dicke superradiance in arrays of quantum emitters. Nat. Commun. 13, 2285 (2022).
Bloch, J., Carusotto, I. & Wouters, M. Non-equilibrium Bose–Einstein condensation in photonic techniques. Nat. Rev. Phys. 4, 470–488 (2022).
Panico, R. et al. Onset of vortex clustering and inverse vitality cascade in dissipative quantum fluids. Nat. Photonics 17, 451–456 (2023).
Busley, E. et al. Compressibility and the equation of state of an optical quantum gasoline in a field. Science 375, 1403–1406 (2022).
Hakala, T. Ok. et al. Bose–Einstein condensation in a plasmonic lattice. Nat. Phys. 14, 739–744 (2018).
Aberra Guebrou, S. et al. Coherent emission from a disordered natural semiconductor induced by sturdy coupling with floor plasmons. Phys. Rev. Lett. 108, 066401 (2012).
Keeling, J. & Kéna-Cohen, S. Bose–Einstein condensation of exciton-polaritons in natural microcavities. Annu. Rev. Phys. Chem. 71, 435–459 (2020).
Savvidis, P. et al. Angle-resonant stimulated polariton amplifier. Phys. Rev. Lett. 84, 1547 (2000).
Zasedatelev, A. V. et al. A room-temperature natural polariton transistor. Nat. Photonics 13, 378–383 (2019).
Zasedatelev, A. V. et al. Single-photon nonlinearity at room temperature. Nature 597, 493–497 (2021).
Helluin, F. et al. Section diagram and common scaling regimes of two-dimensional exciton–polariton Bose–Einstein condensates. Phys. Rev. Res. 7, 033103 (2025).
Comaron, P., Panico, R., Ballarini, D. & Matuszewski, M. Dynamics of onsager vortex clustering in decaying turbulent polariton quantum fluids. Phys. Rev. Res. 7, L022006 (2025).
Rashidi, Ok. et al. Environment friendly and tunable photochemical cost switch through long-lived bloch floor wave polaritons. Nat. Nanotechnol. 20, 1618–1624 (2025).
Moilanen, A. J., Daskalakis, Ok. S., Taskinen, J. M. & Törmä, P. Spatial and temporal coherence in strongly coupled plasmonic bose-einstein condensates. Phys. Rev. Lett. 127, 255301 (2021).
Berghuis, A. M., Increase, A., Argante, R. P., Murai, S. & Gómez Rivas, J. Condensation of exciton–polaritons in a sure state within the continuum: results of the excitation spot measurement and polariton transport. ACS Nano 18, 31987–31994 (2024).
Baumberg, J. J., Aizpurua, J., Mikkelsen, M. H. & Smith, D. R. Excessive nanophotonics from ultrathin metallic gaps. Nat. Mater. 18, 668–678 (2019).
Kesarwani, S. et al. Incorporation technique for natural dyes into gold nanoparticle supercrystals. J. Chem. Phys. 161, 044702 (2024).
Deshmukh, P. et al. Plug-and-play molecular strategy for room temperature polariton condensation. ACS Photonics 11, 348–355 (2024).
Dietrich, C. P. et al. An exciton-polariton laser based mostly on biologically produced fluorescent protein. Sci. Adv. 2, e1600666 (2016).
Houdré, R., Stanley, R., Oesterle, U., Ilegems, M. & Weisbuch, C. Room-temperature cavity polaritons in a semiconductor microcavity. Phys. Rev. B 49, 16761 (1994).
Arul, R. et al. Large mid-IR resonant coupling to molecular vibrations in sub-nm gaps of plasmonic multilayer metafilms. Mild Sci. Appl. 11, 281 (2022).
Tserkezis, C. et al. Optical response of metallic nanoparticle heteroaggregates with subnanometric gaps. Half. Half. Syst. Charact. 31, 152–160 (2014).
Boddeti, A. Ok. et al. Decreasing efficient system dimensionality with long-range collective dipole–dipole interactions. Phys. Rev. Lett. 132, 173803 (2024).
Fowler-Wright, P., Arnardóttir, Ok. B., Kirton, P., Lovett, B. W. & Keeling, J. Figuring out the validity of cumulant expansions for central spin fashions. Phys. Rev. Res. 5, 033148 (2023).
Kubo, R. Generalized cumulant enlargement technique. J. Phys. Soc. Jpn 17, 1100–1120 (1962).
Ma, J., Wang, X., Solar, C.-P. & Nori, F. Quantum spin squeezing. Phys. Rep. 509, 89–165 (2011).
Baas, A. et al. Synchronized and desynchronized phases of exciton–polariton condensates within the presence of dysfunction. Phys. Rev. Lett. 100, 170401 (2008).
Caputo, D. et al. Topological order and thermal equilibrium in polariton condensates. Nat. Mater. 17, 145–151 (2018).
Damm, T., Dung, D., Vewinger, F., Weitz, M. & Schmitt, J. First-order spatial coherence measurements in a thermalized two-dimensional photonic quantum gasoline. Nat. Commun. 8, 158 (2017).
Wertz, E. et al. Spontaneous formation and optical manipulation of prolonged polariton condensates. Nat. Phys. 6, 860–864 (2010).
Roumpos, G. et al. Energy-law decay of the spatial correlation operate in exciton-polariton condensates. Proc. Natl Acad. Sci. USA 109, 6467–6472 (2012).
Walker, B. T. et al. Pushed-dissipative non-equilibrium Bose–Einstein condensation of lower than ten photons. Nat. Phys. 14, 1173–1177 (2018).
Shishkov, V. Y., Andrianov, E. S., Tretiak, S., Whaley, Ok. B. & Zasedatelev, A. V. Sympathetic mechanism for vibrational condensation enabled by polariton optomechanical interplay. Phys. Rev. Lett. 133, 186903 (2024).
Esteban, R., Baumberg, J. J. & Aizpurua, J. Molecular optomechanics strategy to surface-enhanced Raman scattering. Acc. Chem. Res. 55, 1889–1899 (2022).
Lagoudakis, Ok. G. et al. Quantized vortices in an exciton–polariton condensate. Nat. Phys. 4, 706–710 (2008).
Drori, L. et al. Quantum vortices of strongly interacting photons. Science 381, 193–198 (2023).
Fontaine, Q. et al. Kardar–Parisi–Zhang universality in a one-dimensional polariton condensate. Nature 608, 687–691 (2022).
Ma, X., Solnyshkov, D., Malpuech, G., Schumacher, S. & Kavokin, A. Vortices and solitons in polariton superfluids and condensates. Nat. Rev. Phys. 8, 437–451 (2026).
Hanai, R., Edelman, A., Ohashi, Y. & Littlewood, P. B. Non-Hermitian section transition from a polariton Bose–Einstein condensate to a photon laser. Phys. Rev. Lett. 122, 185301 (2019).
Zhu, C. et al. Single-photon superradiance in particular person caesium lead halide quantum dots. Nature 626, 535–541 (2024).
Braiman, Y., Ditto, W., Wiesenfeld, Ok. & Spano, M. Dysfunction-enhanced synchronization. Phys. Lett. A 206, 54–60 (1995).
Bigger, L., Penkovsky, B. & Maistrenko, Y. Laser chimeras as a paradigm for multistable patterns in complicated techniques. Nat. Commun. 6, 7752 (2015).
Bohnet, J. G. et al. A gentle-state superradiant laser with lower than one intracavity photon. Nature 484, 78–81 (2012).
Yu, J.-C., Bhave, S., Reeve, L., Track, B. & Schneider, U. Observing the two-dimensional Bose glass in an optical quasicrystal. Nature 633, 338–343 (2024).
Daggett, E. et al. Many-body entanglement in solid-state emitters. Nat. Rev. Mater. 11, 354–374 (2026).
Toninelli, C. et al. Single natural molecules for photonic quantum applied sciences. Nat. Mater. 20, 1615–1628 (2021).
Atatüre, M., Englund, D., Vamivakas, N., Lee, S.-Y. & Wrachtrup, J. Materials platforms for spin-based photonic quantum applied sciences. Nat. Rev. Mater. 3, 38–51 (2018).
Sandik, G., Feist, J., García-Vidal, F. J. & Schwartz, T. Cavity-enhanced vitality transport in molecular techniques. Nat. Mater. 24, 344–355 (2025).
Brawley, Z. T. et al. Vibrational weak and powerful coupling modify a chemical response through cavity-mediated radiative vitality switch. Nat. Chem. 17, 439–447 (2025).
Zhang, J., Shi, T., Miao, J., Yu, D. & Chen, J. An especially bad-cavity laser. npj Quantum Inf. 10, 87 (2024).
Hoang, T. B., Akselrod, G. M. & Mikkelsen, M. H. Ultrafast room-temperature single photon emission from quantum dots coupled to plasmonic nanocavities. Nano Lett. 16, 270–275 (2016).
Liu, F. et al. Excessive Purcell issue technology of indistinguishable on-chip single photons. Nat. Nanotechnol. 13, 835–840 (2018).
