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Dielectric nanolaser with atomic-scale electromagnetic field localization

† 
Institute of Spectroscopy, Russian Academy of Sciences, ul. Fizicheskaya 5, Troitsk, Moscow, 108840, Russian Federation

Semiconductor nanolasers represent a modern frontier of research at the intersection of nanotechnology, nanophotonics, and laser physics. In this review, we examine some of the most exciting recent results in this field. We focus on nanoscale lasers fabricated using two-dimensional photonic crystals and discuss the characteristics of these nanolasers. Due to the small size and strong field localization of these nanolasers, some common concepts in semiconductor laser physics must be reconsidered to validate their applicability at the nanoscale. We attempt to answer the question of how small a laser can be and whether there is a limit to its size.

Typically, an English full text is available in about 1 month from the date of publication of the original article.

Correspondence should be addressed to
Keywords: nanolaser, nanophotonics, nanotechnology, laser physics, photonic crystals, nanoantenna, nanocavity, atomic scale field localization
PACS: 42.55.Px, 42.55.Tv, 42.60.Da (all)
DOI: 10.3367/UFNe.2026.02.040093
URL: https://ufn.ru/en/articles/2026/8/a/
Citation: Balykin V I "Dielectric nanolaser with atomic-scale electromagnetic field localization" Phys. Usp. 69 (8) (2026)

Received: 10th, October 2025, revised: 26th, December 2025, 6th, February 2026

Оригинал: Балыкин В И «Диэлектрический нанолазер с локализацией электромагнитного поля на атомном масштабе» УФН 196 787–828 (2026); DOI: 10.3367/UFNr.2026.02.040093

References (228) ↓ Similar articles (20)

  1. Einstein ’B "Strahlungs-Emission und Absorption nach der Quantentheorie" Verhandlungen Deutsche Phys. Gesellschaft 18 318 (1916); Einstein A "On the quantum theory of radiation" Laser Theory (Ed. F A Barnes) (New York: IEEE Press, 1972) p. 5-21
  2. Kopfermann H, Ladenburg R Nature 122 438 (1928)
  3. ’s’?’?р’?’?’?’?т ’E ’B ’nру’?ы ’Eс’?с’?yu’?. э’?’?’?тр’?т’?kh’?’?ch’?с’?’?’?’? ’?’?-т’? 41 236 (1940); ’z’?р. ’?’? ’?’?’?’?. ya’?., ’s’?’?р’?’?’?’?т ’E ’B ’R’?’?р’?’?’?ы’? ’?у’?’?’?’?’?ts’?’?. Selected Works (’l’?ст. ’’ ’a ’G’?’?’?р’?’?’?, ’?’?р. ’?’? ’?’?’?’?. ya’?. ’M ’I ’lтр’?’?ьch’?’?’?’?) (’a.: ’R’?’?. ’?’?’? ’a’e’R, 2007) с. 133
  4. Lamb W E (Jr.), Retherford R C Phys. Rev. 79 549 (1950)
  5. Purcell E M, Pound R V Phys. Rev. 81 279 (1951)
  6. Gordon J P, Zeiger H J, Townes C H Phys. Rev. 95 282 (1954)
  7. Schawlow A L, Townes C H Phys. Rev. 112 1940 (1958)
  8. Javan A Phys. Rev. Lett. 3 87 (1959)
  9. Maiman T H Nature 187 493 (1960)
  10. Javan A, Bennett W R (Jr.), Herriott D R Phys. Rev. Lett. 6 106 (1961)
  11. Geusic J E, Marcos H M, Van Uitert L G Appl. Phys. Lett. 4 182 (1964)
  12. Braunstein R Phys. Rev. 99 1892 (1955)
  13. Hall R N et al Phys. Rev. Lett. 9 366 (1962)
  14. Kroemer H Proc. IEEE 51 1782 (1963)
  15. ’B’?ф’?р’?’? Zh ’R ’? ’?р Fiz. Tekh. Poluprovodn. 1 1579 (1967); Alferov Zh I et al Sov. Phys. Semicond. 1 1313 (1968)
  16. Welch D F IEEE J. Sel. Top. Quantum Electron. 6 1470 (2000)
  17. Ikeda M et al Appl. Phys. Lett. 47 1027 (1985)
  18. Gomyo A et al Electron. Lett. 23 85 (1987)
  19. Burnham R D, Scifres D R, Streifer W IEEE J. Quantum Electron. 11 439 (1975)
  20. Suematsu Y IEEE J. Sel. Top. Quantum Electron. 6 1436 (2000)
  21. Coldren L A IEEE J. Sel. Top. Quantum Electron. 6 988 (2000)
  22. ’F’?’?’?р’?’?’?’? ’i ’s, ’lур’?с ’i ’B Fiz. Tekh. Poluprovodn. 5 797 (1971); Kazarinov R F, Suris R A Sov. Phys. Semicond. 5 707 (1971)
  23. Faist J et al Science 264 553 (1994)
  24. Smit M, van der Tol J, Hill M Laser Photon. Rev. 6 1 (2012)
  25. Leuthold J et al Opt. Photon. News 24 28 (2013)
  26. Gather M C, Yun S H Nature Photon. 5 406 (2011)
  27. Kim T et al Science 340 211 (2013)
  28. Iga K IEEE J. Sel. Top. Quantum Electron. 6 1201 (2000)
  29. Levi A F J et al Electron. Lett. 28 1010 (1992)
  30. Painter O et al Science 284 1819 (1999)
  31. Huang M H et al Science 292 1897 (2001)
  32. Bergman D J, Stockman M I Phys. Rev. Lett. 90 027402 (2003)
  33. Noginov M A et al Nature 460 1110 (2009)
  34. Gramotnev D K, Bozhevolnyi S I Nature Photon. 4 83 (2010)
  35. Oulton R F et al Nature 461 629 (2009)
  36. Richter M et al Phys. Rev. B 91 035306 (2015)
  37. Asada M et al JEEE J. Quantum Electron. 22 1915 (1986)
  38. Chang S-W, Lin T-R, Chuang S L Opt. Express 18 15039 (2010)
  39. Kirstaedter N et al Appl. Phys. Lett. 69 1226 (1996)
  40. Hill M T et al Opt. Express 17 11107 (2009)
  41. Chen R et al Nature Photon. 5 170 (2011)
  42. Saxena D et al Nature Photon. 7 963 (2013)
  43. Ni C-Y A, Chuang S L Opt. Express 20 16450 (2012)
  44. Hill M T J. Lightwave Technol. 31 2540 (2013)
  45. ’G’?’?ы’?’?’? ’E ’R Usp. Fiz. Nauk 188 935 (2018); Balykin V I Phys. Usp. 61 846 (2018)
  46. Azzam S I et al Light Sci. Appl. 9 90 (2020)
  47. Hill M T et al Nature Photon. 1 589 (2007)
  48. Nezhad M P et al Nature Photon. 4 395 (2010)
  49. Yu K, Lakhani A, Wu M C Opt. Express 18 8790 (2010)
  50. Lu C Y et al IEEE Photon. Technol. Lett. 23 1031 (2011)
  51. Albrechtsen M et al Nature Commun. 13 6281 (2022)
  52. Hill M T, Gather M C Nature Photon. 8 908 (2014)
  53. Hu S et al Sci. Adv. 4 eaat2355 (2018)
  54. Khurgin J B, Noginov M A Laser Photon. Rev. 15 2000250 (2021)
  55. Kien F L et al Opt. Commun. 242 445 (2004)
  56. Balykin V I et al Phys. Rev. A 70 011401 (2004)
  57. Gu Q, Fainman Y Semiconductor Nanolasers (Cambridge: Cambridge Univ. Press, 2017)
  58. Purcell E M Confined Electrons And Photons: New Physics And Applications (NATO ASI Ser. B, Vol. 340, Eds E Burstein, C Weisbuch) (New York: Plenum Press, 1995) p. 839
  59. Rice P R, Carmichael H J Phys. Rev. A 50 4318 (1994)
  60. Deng H et al Adv. Opt. Mater. 9 2100415 (2021)
  61. Dimopoulos E et al Optica 10 973 (2023)
  62. Ota Y et al Opt. Express 25 19981 (2017)
  63. Jagsch S T et al Nature Commun. 9 564 (2018)
  64. ’dр’?’?’?с’?’?’? ’B ’v Usp. Fiz. Nauk 164 415 (1994); Oraevskii A N Phys. Usp. 37 393 (1994)
  65. Ning C-Z Adv. Photon. 1 014002 (2019)
  66. Wenzel H et al Appl. Sci. 11 6004 (2021)
  67. Lippi G et al Chaos Solitons Fractals 157 111850 (2022)
  68. Chao P et al Nature Rev. Phys. 4 543 (2022)
  69. Nezhad M P et al Nature Photon. 4 395 (2010)
  70. Romeira B, Fiore A IEEE J. Quantum Electron. 54 2000412 (2018)
  71. Purcell E E Phys. Rev. 69 674 (1946)
  72. Gérard J M et al Phys. Rev. Lett. 81 1110 (1998)
  73. Ning C Z IEEE J. Select. Top. Quantum Electron. 19 503604 (2013)
  74. Spillane S M, Kippenberg T J, Vahala K J Nature 415 621 (2002)
  75. Vyshnevyy A A Phys. Rev. B 220101 (2022)
  76. Carroll M A et al Phys. Rev. A 107 063710 (2023)
  77. Khajavikhan M et al Nature 482 204 (2012)
  78. Rieto P et al Optica 2 66 (2015)
  79. Yokoyama H, Brorson S D J. Appl. Phys. 66 4801 (1989)
  80. Lau E K et al Opt. Express 17 7790 (2009)
  81. Suhr T et al Opt. Express 18 11230 (2010)
  82. Liu N et al Nano Lett. 16 7822 (2016)
  83. Campillo A J et al Phys. Rev. Lett. 67 437 (1991)
  84. Wei W et al AIP Adv. 5 87148 (2015)
  85. Brown R H, Twiss R Q Nature 177 27 (1956)
  86. Chow W W et al Light Sci. Appl. 3 e201 (2014)
  87. Hayenga W Fundamental Properties Of Metallic Nanolasers (Orlando, FL: Univ. of Central Florida, 2019)
  88. Kreinberg S et al Light Sci. Appl. 6 e17030 (2017)
  89. Eaton S W et al Nature Rev. Mater. 1 16028 (2016)
  90. ’F’?’?’?’?’? ’E ’E Usp. Fiz. Nauk 193 279 (2023); Klimov V V Phys. Usp. 66 263 (2023)
  91. Khurgin J B ELight 5 31 (2025)
  92. Björk G, Karlsson A, Yamamoto Y Phys. Rev. A 50 1675 (1994)
  93. Takemura N et al Phys. Rev. A 99 053820 (2019)
  94. Svelto O Principles Of Lasers (New York: Plenum Press, 1982)
  95. Ellis T, Eslami S, Palomba S Nanophotonics 13 2707 (2024)
  96. Mørk J et al IEEE J. Select. Top. Quantum Electron. 31 3483900 (2025)
  97. Vahala K J Nature 424 839 (2003)
  98. Noda S Science 314 260 (2006)
  99. Lalanne P, Sauvan C, Hugonin J P Laser Photon. Rev. 2 514 (2008)
  100. Zhou T et al Nature Commun. 11 977 (2020)
  101. Nomura M et al Opt. Express 17 15975 (2009)
  102. Notomi M Rep. Prog. Phys. 73 096501 (2010)
  103. Yablonovitch E Phys. Rev. Lett. 58 2059 (1987)
  104. John S Phys. Rev. Lett. 58 2486 (1987)
  105. Lin S Y et al Nature 394 251 (1998)
  106. Noda S et al Science 289 604 (2000)
  107. Zappe H Fundamentals Of Micro-Optics (Cambridge: Cambridge Univ. Press, 2010)
  108. Charlton M, Parker G J. Micromech. Microeng. 8 172 (1998)
  109. Pisignano D et al Nanotechnology 15 766 (2004)
  110. Johnson S G et al Phys. Rev. B 62 8212 (2000)
  111. Notomi H et al Electron. Lett. 37 293 (2001)
  112. Fan S et al IEEE J. Lightwave Technol. 24 4493 (2006)
  113. Joannopoulos J D, Meade R D, Winn J N Photonic Crystals: Molding The Flow Of Light (Princeton, NJ: Princeton Univ. Press, 1995)
  114. Solgaard O Photonic Microsystems. Micro And Nanotechnology Applied To Optical Devices And Systems (New York: Springer-Verlag, 2009)
  115. Kim G H et al Opt. Express 12 6624 (2004)
  116. Vuckovic J et al IEEE J. Quantum Electron. 38 850 (2002)
  117. Lalanne P et al Opt. Express 12 458 (2004)
  118. Englund D et al Opt. Express 13 5961 (2005)
  119. Benisty H Nature Phys. 1 9 (2005)
  120. Srinivasan K, Painter O Opt. Express 10 670 (2002)
  121. Palamaru M, Lalanne P et al Appl. Phys. Lett. 78 1466 (2001)
  122. Haus H A Waves And Fields In Optoelectronics (London: Prentice-Hall Intern., 1984)
  123. Peyrade D et al Appl. Phys. Lett. 81 829 (2002)
  124. Cluzel B et al Appl. Phys. Lett. 88 051112 (2006)
  125. Sauvan C et al Opt. Express 13 245 (2005)
  126. Velha P et al New J. Phys. 8 204 (2006)
  127. Velha P Opt. Express 15 16090 (2007)
  128. Md Zain A R et al Opt. Express 16 12084 (2008)
  129. Song B S et al Nature Mater. 4 207 (2005)
  130. Song B S et al Science 300 1537 (2003)
  131. Song B S et al Appl. Phys. Lett. 85 4591 (2004)
  132. Noda S et al Nature Rev. Electr. Eng. 1 802 (2024)
  133. Mu Y, Savage C M Phys. Rev. A 46 5944 (1992)
  134. Akahane Y et al Nature 425 944 (2003); Noda S, Chutinan A, Imada M Nature 407 608 (2000)
  135. Le Kien F, Balykin V I, Hakuta K Phys. Rev. A 70 063403 (2004)
  136. ’G’?’?ы’?’?’? ’E ’R Usp. Fiz. Nauk 184 656 (2014); Balykin V I Phys. Usp. 57 607 (2014)
  137. Jahnke F et al Nature Commun. 7 11540 (2016)
  138. Hood C J, Kimble H J, Ye J Phys. Rev. A 64 033804 (2001)
  139. ’G’?’?ы’?’?’? ’E ’R Usp. Fiz. Nauk 179 297 (2009); Balykin V I Phys. Usp. 52 275 (2009)
  140. ’G’?’?ы’?’?’? ’E ’R, ’a’?’?’?’?ть’?’? ’z ’v Usp. Fiz. Nauk 188 143 (2018); Balykin V I, Melentiev P N Phys. Usp. 61 133 (2018)
  141. ’i’?’?’?’?’? ’a ’B, ’F’?’?’?’?’? ’E ’E Usp. Fiz. Nauk 188 169 (2018); Remnev M A, Klimov V V Phys. Usp. 61 157 (2018)
  142. Dehmelt H Rev. Mod. Phys. 62 525 (1990)
  143. Almeida V R et al Opt. Lett. 29 1209 (2004)
  144. Robinson J T et al Phys. Rev. Lett. 95 143901 (2005)
  145. ’G’?р’? ’a, ’E’?’?ьф ’e ’dс’?’?’?ы ’?’?т’?’?’? (’a.: ’v’?у’?’?, 1973); ’z’?р. с ’?’?’?’?. ya’?., Born M, Wolf E Principles Of Optics (Oxford: Pergamon Press, 1968)
  146. Huand S, Weiss S M ACS Photon. 3 1647 (2016)
  147. Sakoda K Optical Properties Of Photonic Crystals (Springer Ser. In Optical Sciences, Vol. 80) (Berlin: Springer-Verlag, 2005)
  148. Hu S, Weiss S M ACS Photon. 3 1647 (2016)
  149. ’F’?’?’?’?’? ’E ’E Usp. Fiz. Nauk 178 875 (2008); Klimov V V Phys. Usp. 51 839 (2008)
  150. Khurgin J B Nanophotonics 7 305 (2018)
  151. Gondarenko A et al Phys. Rev. Lett. 96 143904 (2006)
  152. Gondarenko A, Lipson M Opt. Express 16 17689 (2008)
  153. Choi H, Heuck M, Englund D Phys. Rev. Lett. 118 223605 (2017)
  154. Wang F et al Appl. Phys. Lett. 113 241101 (2018)
  155. Isiklar G et al Opt. Express 30 47304 (2022)
  156. Zhao Q, Zhang L, Miller O D arXiv:2008.13241v1
  157. Schuller J A et al Nature Mater. 9 193 (2010)
  158. Kuramochi E et al Opt. Express 18 15859 (2010)
  159. Quan Q, Loncar M Opt. Express 19 18529 (2011)
  160. Hu S et al Opt. Express 30 7612 (2022)
  161. Albrechtsen M et al Opt. Express 30 15458 (2022)
  162. Xiong M et al Opt. Mater. Express 14 397 (2024)
  163. Ma R-M et al Fundam. Res. 3 537 (2023)
  164. Mao W-Z, Luan H-Y, Ma R-M arXiv:2504.07518
  165. ’Kzh’?’?с’?’? ’K ’F’?’?сс’?ch’?с’?’?ya э’?’?’?тр’?’?’?’?’?’?’?’?’? (’a.: ’a’?р, 1965); ’z’?р. с ’?’?’?’?. ya’?., Jackson J D Classical Electrodynamics (New York: J. Willey, 1962)
  166. Andersen J, Solodukhov V IEEE Trans. Antennas Propag. 26 598 (1978)
  167. Numai T Fundamentals Of Semiconductor Lasers (Springer Ser. In Optical Sciences, Vol. 93) (New York: Springer, 2004)
  168. Yamamoto Y, Imoto N IEEE J. Quantum Electron. 22 2032 (1986)
  169. Mork J, Yvind K Optica 7 1641 (2020)
  170. Nomura M et al Nature Phys. 6 279 (2010)
  171. Gies G et al Phys. Rev. A 96 023806 (2017)
  172. Lou B et al Phys. Rev. Lett. 126 136101 (2021)
  173. Protsenko I E et al New J. Phys. 23 063010 (2021)
  174. Vyshnevyy A A Phys. Rev. B 105 085116 (2022)
  175. Ohtsubo J Semiconductor Lasers. Stability, Instability And Chaos 2nd ed. (Berlin: Springer-Verlag, 2008)
  176. Bundgaard-Nielsen M et al Phys. Rev. Lett. 130 253801 (2023)
  177. Lorke M et al Phys. Rev. B 87 205310 (2013)
  178. Moelbjerg A et al IEEE J. Quantum Electron. 49 945 (2013)
  179. Auèves A et al New J. Phys. 13 093020 (2011)
  180. Saldutti M et al Laser Photon. Rev. 18 2300840 (2024)
  181. Coldren L A, Corzine S W, Mašanović M Diode Lasers And Photonic Integrated Circuits (Hoboken, NJ: John Wiley and Sons, 2012)
  182. Mørk J, Lippi G L Appl. Phys. Lett. 112 141103 (2018)
  183. Gérard J-M Single Quantum Dots. Fundamentals, Applications And New Concepts (Topics In Applied Physics, Vol. 90, Ed. P Michler) (Berlin: Springer, 2003) p. 269
  184. Yacomotti A M et al Laser Photon. Rev. 17 2200377 (2022)
  185. Xiong M et al arXiv:2412.02844
  186. Yu Y et al Appl. Phys. Lett. 105 061117 (2014)
  187. Ouyang Y-H et al Nature 632 287 (2024)
  188. ’Bkh’?’?’?’?р ’B ’R, ’G’?р’?ст’?ts’?’?’? ’E ’G ’F’?’?’?т’?’?’?ya э’?’?’?тр’?’?’?’?’?’?’?’?’? (’a.: ’v’?у’?’?, 1969); ’z’?р. ’?’? ’?’?’?’?. ya’?., Akhiezer A I, Berestetskii V B Quantum Electrodynamics (New York: Interscience Publ., 1965)
  189. Bohm D Quantum Theory (London: Constable, 1954)
  190. Kramers H A Quantum Mechanics (Amsterdam: North-Holland, 1958)
  191. Newton T D, Wigner E P Rev. Mod. Phys. 21 400 (1949)
  192. Landau L, Peierls R Z. Phys. 62 188 (1930)
  193. Bialynicki-Birula I Prog. Opt. 36 245 (1996)
  194. Bialynicki-Birula I Phys. Rev. Lett. 80 5247 (1998)
  195. Roychoudhuri Ch, Kracklauer AF, Creath K The Nature Of Light: What Is A Photon? (Boca Raton, FL: CRC Press, 2017)
  196. Mandel L, Wolf E Optical Coherence And Quantum Optics (Cambridge: Cambridge Univ. Press, 1995)
  197. Keller O Phys. Rep. 411 1 (2005)
  198. Saari P Quantum Optics And Laser Experiments (Ed. S Lyagushyn) (Rijeka, Croatia: InTech, 2012) p. 49
  199. Fermi E Rev. Mod. Phys. 4 87 (1932)
  200. Power E A, Thirunamachandran T Phys. Rev. A 56 3395 (1997)
  201. Keller O Single Mol. 3 (1) 5 (2002)
  202. Muthukrishnan A, Scully M O, Zubairy M S Opt. Photon. News Trends 3 18 (2003)
  203. Weisskopf V, Wigner E Z. Phys. 63 54 (1930)
  204. Hecht J Appl. Opt. 49 F99 (2010)
  205. Dupuis R D Opt. Photon. News 15 (4) 30 (2004)
  206. Nathan M I et al Appl. Phys. Lett. 1 62 (1962)
  207. Matsuo S, Kakitsuka T Adv. Opt. Photon. 10 567 (2018)
  208. Miscuglio M et al APL Mater. 7 081112 (2019)
  209. Robertson J et al IEEE J. Select. Top. Quantum Electron. 26 1 (2020)
  210. Taghinejad M, Cai W ACS Photon. 6 1082 (2019)
  211. Ono M et al Nature Photon. 14 37 (2020)
  212. Guo Q et al Nature Photon. 16 625 (2022)
  213. Bazin A et al Appl. Phys. Lett. 104 011102 (2014)
  214. Moille G et al Laser Photon. Rev. 10 409 (2016)
  215. Colman P et al Phys. Rev. Lett. 117 233901 (2016)
  216. Saudan Q et al Opt. Express 30 7457 (2022)
  217. Moille G et al Phys. Rev. A 94 023814 (2016)
  218. Saldutti M et al Nanomaterials 11 3030 (2021)
  219. ’a’?’?’?’?’? ’n ’I ’’’?’?’?р’?’?ya ’?’?’?сс’?ya (’zр’?’?’?с’?. ’F ’a’?’?’?’?’?, ’?’?’?’?с’?’?’?’?’? с’?’?ts’?’?’?ь’?’? ’?’?ya русс’?. ’?’?’?.; ’?’?р. с ’?’?’?’?. ’a ’v ’l’?’?’?zh’?’?’?’?’?’?) (’a.: ’z’?ch’?т’?ы’? ’nр’?’?’?ts’?’?, 2010); ’z’?р. с ’?’?’?’?. ya’?., Maiman T H The Laser Odyssey (Blaine, WA: Laser Press, 2000)
  220. Maiman T H "50 ’?’?т ’?’?’?’?р’?’?’? эры" Usp. Fiz. Nauk 181 2 (2011); Maiman T H "50 years of the laser era" Phys. Usp. 54 1 (2011)
  221. ’Fр’?kh’?’? ’d ’v "’’’?’?’?р - ’?ст’?ch’?’?’? ’?’?’?’?р’?’?т’?’?’?’? с’?’?т’?" Usp. Fiz. Nauk 181 3 (2011); Krokhin O N "Laser: a source of coherent light" Phys. Usp. 54 3 (2011)
  222. Shch’?р’?’?’?’?’? ’R ’B "’F ’?ст’?р’?’? с’?’?’?’?’?’?ya ’?’?’?’?р’?" Usp. Fiz. Nauk 181 71 (2011); Shcherbakov I A "Development history of the laser" Phys. Usp. 54 65 (2011)
  223. ’G’?’?’?ус’?’?’? ’R ’a "’’’?’?’?р ’? ’l’l’l’i: ’?’?р’?ы’? sh’?’?’?" Usp. Fiz. Nauk 181 79 (2011); Belousova I M "The laser inthe USSR: the first steps" Phys. Usp. 54 73 (2011)
  224. ’’’?’?’?т’?’?’?ch ’B ’a, Ch’?zh’?’?’?’?’? ’O ’B "’d с’?’?’?’?’?’?’? ’?’?р’?’?’?’? ’?’?’?’?р’? ’?’? ру’?’?’?’? ’? ’a’?с’?’?’?" Usp. Fiz. Nauk 181 82 (2011); Leontovich A M, Chizhikova Z A "On the creation of the first ruby laser in Moscow" Phys. Usp. 54 77 (2011)
  225. ’a’?с’?’?’?’? ’B ’E "’dт’?’?’?’?’?’?’? ’?’?т’?’?’? ’s’R’B’v’?: ’?’?р’?ы’? р’?’?’?ты ’?’? с’?’?’?’?’?’?yu ’?’?’?’?р’?’?" Usp. Fiz. Nauk 181 93 (2011); Masalov A V "Optical Department of the Lebedev Physical Institute: early work on lasers" Phys. Usp. 54 87 (2011)
  226. ’z’?’?’?’? Yu ’a "’Rст’?р’?ya с’?’?’?’?’?’?ya ’?’?zh’?’?ts’?’?’?’?’?’?’? ’?’?’?’?р’?" Usp. Fiz. Nauk 181 102 (2011); Popov Yu M "The early history ofthe injection laser" Phys. Usp. 54 96 (2011)
  227. ’O’?’?ры’?’?’? ’E ’K "’i’?’?ь ’v.’I. ’G’?с’?’?’? ’? с’?’?’?’?’?’?’? э’?с’?’?’?р’?ыkh ’?’?’?’?р’?’?: ’?’?’?у’?’?’?’?’?’?ya ’?ст’?р’?ya ’?т ’?’?’?ус’?’? ’?’?р’?’?’?’? Xe2-’?’?’?’?р’? ’? ’s’R’B’v’? ’?’? с’?’?р’?’?’?’?’?ыkh ’?’?’?’?р’?ыkh с’?ст’?’?" Usp. Fiz. Nauk 193 1103 (2023); Zvorykin V D "N G Basov’s role in the development of excimer lasers: a half-century history from the launch of the first Xe2 laser at the Lebedev Physical Institute to modern laser systems" Phys. Usp. 66 1037 (2023)
  228. Shch’?р’?’?’?’?’? ’R ’B "’F 60-’?’?т’?yu ’v’?’?’?’?’?’?с’?’?’? ’?р’?’?’?’? ’?’? ’?т’?рыт’?’? ’?’?’?’?р’?’?-’?’?’?’?р’?’?’?’? ’?р’?’?ts’?’?’?" Usp. Fiz. Nauk 194 899 (2024); Shcherbakov I A "On the 60th anniversary of Nobel Prize for discovery of laser-maser principle" Phys. Usp. 67 845 (2024)

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