THEORETICAL-STUDY ON ENHANCED DIFFERENTIAL GAIN AND EXTREMELY REDUCED LINEWIDTH ENHANCEMENT FACTOR IN QUANTUM-WELL LASERS

被引:44
作者
YAMANAKA, T
YOSHIKUNI, Y
YOKOYAMA, K
LUI, W
SEKI, S
机构
[1] NTT Opto-electronics Laboratories, Atsugi-shi, Kanagawa
关键词
D O I
10.1109/3.234412
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Low-chirped lasing operation in semiconductor lasers is desirable for high-speed high-bit-rate optical transmission. This paper addresses this issue with a theoretical investigation of possibility of extreme reductions in the linewidth enhancement factor (alpha factor) in quantum-well (QW) lasers to a value of zero. We show that in reducing the alpha factor it is essential that lasing oscillation be around the peak of the differential gain spectrum, not in the vicinity of the gain peak. The condition for such lasing oscillation is analytically derived. The wavelength dependence of the material gain, the differential gain, and the alpha factor are calculated in detail taking into account the effects of compressive-strain and band mixing on the valence subband structure. Along with the derived condition, we also discuss the effect of p-type modulation doping in compressive-strained QW's. It is shown the alpha factor, the anomalous dispersion part in the spectrum, crosses zero in the region of positive material gain, which makes it possible to attain virtual chirpless operation by detuning.
引用
收藏
页码:1609 / 1616
页数:8
相关论文
共 32 条
[11]  
HERMANN C, 1984, OPTICAL ORIENTATION, V8, P463
[12]   BAND STRUCTURE OF INDIUM ANTIMONIDE [J].
KANE, EO .
JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 1957, 1 (04) :249-261
[13]   LINEWIDTH ENHANCEMENT FACTOR OF 1.3-MU M INGAASP INP STRAINED-LAYER MULTIPLE-QUANTUM-WELL DFB LASERS [J].
KANO, F ;
YOSHIKUNI, Y ;
FUKUDA, M ;
YOSHIDA, J .
IEEE PHOTONICS TECHNOLOGY LETTERS, 1991, 3 (10) :877-879
[14]  
KANO F, 1991, 13TH IEEE INT SEM LA, P32
[15]   DIFFERENTIAL GAIN AND LINEWIDTH ENHANCEMENT FACTOR OF 1.5-MU-M MULTIPLE-QUANTUM-WELL ACTIVE LAYERS WITH AND WITHOUT BIAXIALLY COMPRESSIVE STRAIN [J].
KIKUCHI, K ;
KAKUI, M ;
ZAH, CE ;
LEE, TP .
IEEE PHOTONICS TECHNOLOGY LETTERS, 1991, 3 (04) :314-317
[16]   COUPLED-WAVE THEORY OF DISTRIBUTED FEEDBACK LASERS [J].
KOGELNIK, H ;
SHANK, CV .
JOURNAL OF APPLIED PHYSICS, 1972, 43 (05) :2327-+
[17]   VARIATION OF THRESHOLD CURRENT WITH CAVITY LENGTH IN STRAINED-LAYER INGAAS/GAAS QUANTUM-WELL LASERS [J].
LEE, J ;
SHIEH, C ;
VASSELL, MO .
JOURNAL OF APPLIED PHYSICS, 1991, 69 (04) :1882-1891
[18]   THEORETICAL-STUDIES OF THE EFFECT OF STRAIN ON THE PERFORMANCE OF STRAINED QUANTUM-WELL LASERS BASED ON GAAS AND INP TECHNOLOGY [J].
LOEHR, JP ;
SINGH, J .
IEEE JOURNAL OF QUANTUM ELECTRONICS, 1991, 27 (03) :708-716
[19]   MOTION OF ELECTRONS AND HOLES IN PERTURBED PERIODIC FIELDS [J].
LUTTINGER, JM ;
KOHN, W .
PHYSICAL REVIEW, 1955, 97 (04) :869-883
[20]  
Madelung O., 1982, NUMERICAL DATA FUN A, V17