按关键词阅读: 进展 激光器
41、, K. Surface-emitting laser its birth and generation of new optoelectronics field. IEEE J. Sel. Top. Quant. Electron. 6, 12011215 (2000).8. Lee, Y. H. et al. Room-temperature CW vertical cavity single quantum well microlaser diodes. Electron. Lett. 25, 13771378 (1989).9. Levi, A. F. J. et al. Room t 。
42、emperature operation of microdisc lasers with submilliamp threshold current. Electron. Lett. 28, 10101012 (1992).10. Painter, O. et al. Two-dimensional photonic band-gap defect mode laser. Science 284, 18191821 (2010).11. Huang, M. H. et al. Room-temperature ultraviolet nanowire nanolasers. Science。
43、292, 18971899 (2001).12. Samuel, I. D. W. & Turnbull, G. A. Organic semiconductor lasers. Chem. Rev. 107, 12721295 (2007).13. Klimov, V. I. et al. Optical gain and stimulated emission in nanocrystal quantum dots. Science 290, 314317 (2000).14. Gramotnev, D. K. & Bozhevolnyi, S. I. Plasmonics beyond。
44、the diffraction limit. Nature Photon. 4, 8391 (2010).15. Barnes, W. L., Dereux, A. & Ebbesen, T. W. Surface plasmon subwavelength optics. Nature 424, 824830 (2003).16. Zia, R., Selker, M. D., Catrysse, P. B. & Brongersma, M. L. Geometries and materials for subwavelength surface plasmon modes. J. Opt 。
45、. Soc. Am. A21, 24422446 (2004). 17. Hill, M. T. et al. Lasing in metallic-coated nanocavities. Nature Photon. 1, 589594 (2007).18. Hill, M. T. et al. Lasing in metalinsulatormetal sub-wavelength plasmonic waveguides. Opt. Express 17, 1110711112 (2009).19. Noginov, M. A. et al. Demonstration of a sp 。
46、aser-based nanolaser. Nature 460, 11101112 (2009).20. Oulton, R. F. et al. Plasmon lasers at deep subwavelength scale. Nature 461, 629632 (2009).21. Chang, S.-W., Lin, T.-R. & Chuang, S. L. Theory of plasmonic FabryPerot nanolasers. Opt. Express 18, 1503915053 (2010).22. Ning, C.-Z. Semiconductor na 。
47、nolasers. Phys. Status Solidi B 247, 774788 (2010).23. Ni, C.-Y. A. & Chuang, S. L. Theory of high-speed nanolasers and nanoLEDs. Opt. Express 20, 16450 (2012).24. Li, D. & Stockman, M. I. Electric spaser in the extreme quantum limit. Phys. Rev. Lett. 110, 106803 (2013).25. Ma, R.-M., Oulton, R. F., 。
48、 Sorger, V. J. & Zhang, X. Plasmon lasers: Coherent light source at molecular scales. Laser Photon. Rev. 7, 121 (2013).26. Chuang, S. L. Physics of Photonic Devices 2nd edn (Wiley, 2009).27. Hill, M. T. Metalinsulatormetal waveguides with self aligned and electrically contacted thin semiconductor co 。
49、res exhibiting high optical confinement and low loss. J. Light. Technol. 31, 25402549 (2013).28. Kirstaedter, N. et al. Gain and differential gain of single layer InAs/GaAs quantum dot injection lasers. Appl. Phys. Lett. 69, 12261228 (1996).29. Chen, R. et al. Nanolasers grown on silicon. Nature Pho 。
50、ton. 5, 170175 (2011).30. Saxena, D. et al. Optically pumped room-temperature GaAs nanowire lasers. Nature Photon. 7, 963968 (2013).31. Ding, K. et al. Record performance of electrical injection sub-wavelength metallic-cavity semiconductor lasers at room temperature. Opt. Express 21, 47284733 (2013) 。
51、.32. Lu, C.-Y., Chang, S.-W., Chuang, S. L., Germann, T. D. & Bimberg, D. Metal-cavity surface-emitting microlaser at room temperature.Appl. Phys. Lett. 96, 251101 (2010).33. OCarroll, D., Lieberwirth, I. & Redmond, G. Microcavity effects and optically pumped lasing in single conjugated polymer nano 。
52、wires. Nature Nanotech. 2, 180184 (2007).34. Nishijima, Y. et al. Lasing with well-defined cavity modes in dye-infiltrated silica inverse opals. Opt. Express 17, 29762983 (2009).35. Mizuno, H. et al. Single crystals of 5,5-bis(4-methoxybiphenyl-4-yl)-2,2- bithiophene for organic laser media. Adv. Ma 。
53、ter. 24, 57445749 (2012).36. Riechel, S. et al. Very compact tunable solid-state laser utilizing a thin-film organic semiconductor. Opt. Lett. 26, 593595 (2001).37. Shapira, O. et al. Surface-emitting fiber lasers. Opt. Express 14, 39293935 (2006).38. Tang, S. K. Y. et al. A multi-color fast-switchi 。
54、ng microfluidic droplet dye laser. Lab Chip 9, 27672771 (2009).39. Song, W., Vasdekis, A. E., Li, Z. & Psaltis, D. Optofluidic evanescent dye laser based on a distributed feedback circular grating. Appl. Phys. Lett. 94, 161110 (2009).40. Kuehne, A. J. C. et al. A switchable digital microfluidic drop 。
55、let dye-laser. Lab Chip 11, 37163719 (2011).41. Ubukata, T., Isoshima, T. & Hara, M. Wavelength-programmable organic distributed-feedback laser based on a photoassisted polymer-migration system. Adv. Mater. 17, 16301633 (2005).42. Kuwata-Gonokami, M., Takeda, K., Yasuda, H. & Ema, K. Laser emission。
56、from dye-doped polystyrene microsphere. Jpn J. Appl. Phys. 31, L99L101 (1992).43. Yap, B. K., Xia, R., Campoy-Quiles, M., Stavrinou, P. N. & Bradley, D. D. C. Simultaneous optimization of charge-carrier mobility and optical gain in semiconducting polymer films. Nature Mater. 7, 376380 (2008).44. Wan 。
稿源:(未知)
【傻大方】网址:/a/2021/0801/0023373863.html
标题:激光器|小激光器的进展( 八 )