期刊文献+

光电导探测器的响应时间与微变等效电路 被引量:2

Response time and the small signal equivalent circuit of the photoconductive detector
在线阅读 下载PDF
导出
摘要 为了研究光电导探测器对高频光信号的响应特性,分析了光电导探测器响应时间的物理机理,应用解析方法推导出了它的响应时间表达式及其适用条件,建立了光电导探测器的微变等效电路模型,测试了CdSe光电导探测器在不同外接负载电阻条件下的响应时间参数。实验表明:在照度小于103lx范围内,CdSe光电导探测器的响应时间平均值为5.4ms,与外接负载电阻的阻值无关。研究表明:线性光电导探测器的响应时间由半导体材料内部的微观结构决定;探测器可等效为恒流源和光电阻的并联;外接输出电路时,其总的响应时间与探测器的响应时间和光电检测电路的时间常数两个参数有关,一般应用中可近似取为探测器的响应时间。 In order to study the photoconductive detector's response characters to the high frequency signal, the physical mechanism of the photoconductive detector's response time was analyzed, the expression of the response time and its application condition were deduced, the small signal equivalent circuit was build and the response time of CdSe detector with different load resistances were measured. The experimental results show that the average response time of CdSe detector is 5.4 ms and independent of the load resistance when the optical illumination is below 10~ Ix. Based on the theoretical and experimental study, it can be concluded that the response time of the linear photoconductive detector is decided by the microstructure of the semiconductor material; a detector is equivalent to the parallel connection of a constant current supply and a photosensitive resistance; in the condition that there is a output circuit, the total response time is relative to the response time of the detector and the time constant of the circuit, commonly it is approximate to the response time of the detector.
出处 《红外与激光工程》 EI CSCD 北大核心 2009年第5期792-796,共5页 Infrared and Laser Engineering
基金 国家自然科学基金资助项目(60677041)
关键词 光电导探测器 响应时间 恒流源 微变等效电路 光电检测电路 Photoconductive detector Response time Constant current supply Small signal equivalent circuit Opto-electronic detection circuit
作者简介 江文杰(1960-),男,湖南长沙人,副教授,主要从事光电信息技术教学与研究。Email:jwj301@163.com
  • 相关文献

参考文献2

二级参考文献2

  • 1汤定元,光电器件概论,1989年
  • 2刘恩科,半导体物理学,1984年

共引文献2

同被引文献20

  • 1吴春红,张骏,彭晓钰,钱惟贤(指导).采用波形积分法提升APD探测系统检测范围[J].红外与激光工程,2020(S01):110-116. 被引量:3
  • 2伏燕军,邹文栋,肖慧荣,甘月红.半导体激光器驱动电路的光功率控制的研究[J].红外与激光工程,2005,34(5):626-630. 被引量:25
  • 3Khoman Phang, David A Johns. A CMOS optical preamplier for wireless infrared communications [J]. IEEE Transactions on Circuits and Systems-ii: Analog and Digital Signal Processing, 1999, 46(7): 852-859.
  • 4Zhang Xingjie, Zhang Shilin, Han Lei, et al. Design and realization of a novel polycrystalline Si PIN-LED withstandard CMOS technology [J]. Journal of Optoelectronics. Laser, 2013, 24(1): 6-10. (in Chinese).
  • 5Kim Y, Lee W, Pedram M, et al. Dual-mode power regulator for photovoltaic module emulation [J]. Applied Energy, 2012: 730-739.
  • 6Alex K Y Wong, Pun Kongpang, Zhang Yuanting, et al. A low-power CMOS front-end for photoplethysmographic signal acquisition with robust DC photocurrent rejection [J]. IEEE Transactions on Biomedical Circuits and Systems, 2008, 2(4): 280-288.
  • 7Roger Yubtzuan Chen, Tsung-Shuen Hung, Chih-Yuan Hung. A CMOS infrared wireless optical receiver front-end with a variable -gain fully -differential transimpedance amplifier [J]. IEEE Transactions on Consumer Electronics, 2005, 51(2): 424-429.
  • 8Holt S, Skyba P. Electrometric direct current I/V converter with wide bandwidth [J]. Review of Scientific Instruments, 2012, 83(6): 064703-064703-5.
  • 9乔学光,王瑜,傅海威,赵大壮,王炜,张晶.可调谐法布里-珀罗滤波器的高精度大范围实时定标[J].光学学报,2008,28(5):852-855. 被引量:19
  • 10杨鹏,刘桂芝,杨虹.用于红外接收芯片的OTA-C带通滤波器[J].电子元件与材料,2009,28(2):30-31. 被引量:6

引证文献2

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部