Acta Optica Sinica, Volume. 28, Issue 8, 1565(2008)
Optical Proerties of PbTe/CdTe Quantum Wells
[1] [1] Cao Chunfang, Wu Huizhen, Si Jianxiao et al.. Abnormal Raman spectra of PbTe crystalline thin films grown by molecular beam epitaxy[J]. Acta Physica Sinica, 2006, 55(4): 2021~2026
[2] [2] Mitsuaki Yano, Isao Makabe, Kazuto Koike. Photoluminescence characterized thermal mismatch of PbTe/CdTe single quanum wells grown on GaAs substrates[J]. Phys. E, 2004, 20: 449~452
[3] [3] H. Z. Wu, N. Dai, M. B. Johnson et al.. Unambiguous observation of subband transitions from longitudinal valley and oblique valleys in Ⅳ-Ⅵ multiple quantum wells[J]. Appl. Phys. Lett., 2001, 78(15): 2199~2201
[4] [4] D. L. Partin. Lead salt quantum effect structures[J]. IEEE J. Quant. Electron., 1988, 24(8): 1716~1726
[5] [5] P. J. McCann, K. Namjou, X. M. Fang. Above-room-temperature continuous-wave mid-infrared photoluminescence from PbSe/PbSrSe quantum wells[J]. Appl. Phys. Lett., 1999, 75(23): 3608~3610
[6] [6] E. Abramof, E. A. de Andrada e Silva, S. O. Ferreira et al.. Optical spectra of PbTe/Pb1-xEuxTe quantum wells[J]. Phys. Rev. B, 2001, 63(8): 085304-1~8
[7] [7] W. Heiss, H. Groiss, E. Kaufmann et al.. Centrosymmetric PbTe/CdTe quantum dots coherently embedded by epitaxial precipitation[J]. Appl. Phys. Lett., 2006, 88(19): 192109-1~3
[8] [8] Shu Yuan, H. Krenn, G. Springholz et al.. Dispersion of absorption and refractive index of PbTe and Pb1-xEuxTe (x<0.05) below and above the fundamental gap[J]. Phys. Rev. B, 1993, 47(12): 7213~7226
[9] [9] Kazuto Koike, Takayoshi Honden, Isao Makabe et al.. PbTe/CdTe single quantum wells grown on GaAs (100) substrates by molecular beam epitaxy[J]. J. Cryst. Growth, 2003, 257: 212~217
[10] [10] Majed F. Khodr, Patrick J. McCann, Bruce A. Mason. Effects of band nonparabolicity on the gain and current density in EuSe-PbSe0.78Te0.22-EuSe Ⅳ-Ⅵ semiconductor quantum-well lasers[J]. IEEE J. Quant. Electron., 1996, 32(2): 236~247
[11] [11] Z. Shi, X. Lv, F. Zhao et al.. [110] Orientated lead salt midinfrared lasers[J]. Appl. Phys. Lett., 2004, 85(15): 2999~3001
[12] [12] H. Preier. Recent advances in lead chalcogenide diode lasers[J]. Appl. Phys., 1979, 20: 189~206
[13] [13] Sotirios Baskoutas, Andreas F. Terzis. Size-dependent band gap of colloidal quantum dots[J]. J. Appl. Phys., 2006, 99(1): 013708-1~4
[14] [14] H. Zogg, S. Blunier, A. Fach et al.. Thermal-mismatch-strain relaxation in epitaxial CaF2, BaF2/CaF2 layers on Si(111) after many temperature cycles[J]. Phys. Rev. B, 1994, 50(15): 10801~10810
[15] [15] L. G. Ferreira. Deformation potentials of lead telluride[J]. Phys. Rev., 1965, 137(5A): A1601~A1609
[16] [16] G. M. T. Foley, D. N. Langenberg. Microwave magnetoplasma study of lattice and electronic properties of PbTe[J]. Phys. Rev. B, 1977, 15(10): 4830~4849
[17] [17] S. L. Chuang. Physics of Optoelectronic Devices[M]. New York: ohn Wiley & Sons. nc., 1995. Chapter 9. 363
[18] [18] M. Asada. Intraband relaxation time in quantum-well lasers[J]. IEEE J. Quant. Electron., 1989, 25(9): 2019~2026
[19] [19] M. Takeshima. Theory of the carrier-carrier and carrier-phonon interactions under double injection into undoped quantum wells and its application to a laser problem[J]. Phys. Rev. B, 1987, 36(15): 8082~8093
[20] [20] W. W. Anderson. Gain-frequency-current relation for Pb1-xSnxTe double heterostructure lasers[J]. IEEE J. Quant. Electron., 1977, 13(7): 532~543
[21] [21] M. Asada, A. Kameyama, Y. Suematsu. Gain and intervalence band absorption in quantum-well lasers[J]. IEEE J. Quant. Electron., 1984, 20(7): 745~753
[22] [22] Xu T N, Wu H Z, Si J X, P. J. McCann. Optical transitions in PbTe/CdTe quantum dots[J]. Phys. Rev. B, 2007, 76: 155328-1~9
[23] [23] Xu Tianning, Wu Huizhen, Si Jianxiao. Optical gain in PbTe/CdTe quantum dots[J]. Acta Physica Sinica, 2008, 57(4): 2574~2581
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Xu Tianning, Li Jiahui, Zhang Lei, Wu Huizhen. Optical Proerties of PbTe/CdTe Quantum Wells[J]. Acta Optica Sinica, 2008, 28(8): 1565