光电探测器抗背景光噪声,扩展输入信号的动态范围

V. M. Lipka, V. Ryukhtin, Y. Dobrovolsky
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引用次数: 1

摘要

利用扩展动态范围的光电探测器测量背景光噪声中的周期性光信息信号是现代电子学的紧迫任务,因此成为本课题的研究目标。为了提高光电探测器的动态范围,设计了一种新型的自动增益控制电路,该电路由一个AGC控制器、一个输出光电探测器放大器和一个AGC检测器组成。在20khz调制频率下,测量了该光电探测器在接收功率为2.10-8 ~ 2.10-5 W、波长为1064 nm的光辐射时的动态范围。在此条件下,光电探测器的动态范围可达67 dB。如果AGC关闭,则动态范围不超过30db。因此,该研究使得基于新版本的AGC电路创建具有扩展动态范围高达67 dB的光电探测器成为可能。该光电探测器的设计允许在3 ~ 45khz的频率范围内选择特定调制频率的有用信号,并有效抑制从恒幅输入信号的频率到3khz的低频范围内由光干涉引起的频率。这补偿了高达15ma的电流,相当于约15mw的光干扰功率。进一步的研究应解决所提出的光电探测器设计的可靠性和光学系统的优化问题。光电探测器可用于大地测量和环境空气质量监测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Photodetector resistant to background light noise with extended dynamic range of input signals
Measurement of periodic optical information signals in the background light noise with a photodetector with extended dynamic range is an urgent task of modern electronics and thus has become the aim of this study. To increase the dynamic range of the photodetector, a new version of the automatic gain control (AGC) circuit has been developed, which consists of an AGC controller, an output photodetector amplifier and an AGC detector. The authors measured the dynamic range of the photodetector when receiving optical radiation with a wavelength of 1064 nm in the power range from 2.10–8 to 2.10–5 W at a modulation frequency of 20 kHz with the AGC on. Under these conditions, the dynamic range of the photodetector was found to be up to 67 dB. If the AGC was off, the dynamic range did not exceed 30 dB. Thus, the study made it possible to create a photodetector with an extended dynamic range up to 67 dB based on a new version of the AGC circuit. The design of the photodetector allowed choosing a useful signal of a particular modulation frequency in the frequency range from 3 to 45 kHz and effectively suppresses the frequencies caused by optical interference in the low frequency range from the frequency of the input signal of constant amplitude up to 3 kHz inclusive. This compensates the current up to 15 mA, which is equivalent to the power of light interference of about 15 mW. Further research should address the issues of reliability of the proposed photodetector design and optimization of its optical system. The photodetector can be used in geodesy and ambient air quality monitoring.
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