Title :
High-reliability and low-dark-current 10-Gb/s planar superlattice avalanche photodiodes
Author :
Watanabe, I. ; Nakata, T. ; Tsuji, M. ; Makita, K. ; Taguchi, K.
Author_Institution :
Opto-Electron. Res. Labs., NEC Corp., Ibaraki, Japan
Abstract :
For compact and high-sensitivity 10 Gb/s optical receiver applications, we have developed low-dark-current planar-structure InAlGaAs-InAlAs superlattice avalanche photodiodes with a Ti-implanted guard-ring. The APDs exhibited dark current as low as 0.36 μA at a gain of 10. The temperature dependence of the dark current was confirmed to be in a sufficient level for practical 10-Gb/s applications. The APDs also exhibited a quantum efficiency of 67%, a gain-bandwidth-product of 110 GHz, a top 3-dB bandwidth of 15.2 GHz, and a minimum gain for 10-GHz bandwidth of 1.6. Preliminary aging test also showed a stable dark current operation after aging of over 2200 h at 200/spl deg/C. These high-reliability, low-dark-current, high-speed, and wide-dynamic-range characteristics are promising for 10-Gb/s high-sensitivity optical receiver use.
Keywords :
III-V semiconductors; ageing; aluminium compounds; avalanche photodiodes; dark conductivity; gallium arsenide; indium compounds; life testing; optical receivers; optical testing; semiconductor device reliability; semiconductor device testing; sensitivity; 0.36 muA; 10 GHz; 10 Gbit/s; 15.2 GHz; 200 C; 2200 h; GHz bandwidth; Gb/s high-sensitivity optical receiver; Gb/s optical receiver applications; Gb/s planar superlattice avalanche photodiodes; InAlGaAs-InAlAs; Ti-implanted guard-ring; dB bandwidth; dark current; gain-bandwidth-product; high-reliability; high-sensitivity; low-dark-current; low-dark-current planar-structure InAlGaAs-InAlAs superlattice avalanche photodiodes; minimum gain; preliminary aging test; quantum efficiency; stable dark current operation; temperature dependence; wide-dynamic-range characteristics; Absorption; Aging; Avalanche photodiodes; Bandwidth; Dark current; Fabrication; High speed optical techniques; Optical receivers; Optical superlattices; Thickness control;
Journal_Title :
Photonics Technology Letters, IEEE