研究目的
To present two ultra-low noise balanced detectors that simultaneously achieve high bandwidth and low noise for optical time domain measurements, addressing the difficulty of realizing such performance in commercial detectors.
研究成果
Two ultra-low noise balanced detectors for CVQKD and LOS were realized, achieving high bandwidth and low noise simultaneously. The CVQKD BD has a bandwidth of 70 MHz with a gain of 3.2E5 V/W and a NEP of 2.2 pW/rtHz, while the LOS BD reaches 250 MHz bandwidth with a gain of 5E4 V/W and a NEP of 6.2 pW/rtHz. Both detectors achieved a CMRR greater than 50 dB, demonstrating their suitability for high-performance optical time domain measurements.
研究不足
The difficulty of achieving high bandwidth with low noise simultaneously, and the potential for further optimization in reducing parasitic effects to improve detector performance.
1:Experimental Design and Method Selection:
Two-stage amplification circuits based on transimpedance amplifiers (TIAs) were used for the detectors, with special modifications for different applications. A low noise JFET was connected between the photodiode and TIA in one detector to reduce amplifier leakage current impact.
2:Sample Selection and Data Sources:
Specially selected InGaAs PIN photodiodes (FGA01FC from Thorlabs) were used for photocurrent decrement.
3:List of Experimental Equipment and Materials:
Operational amplifiers (OPA847 from TI), JFET (BF862), differential operational amplifier (LTC6409 from Linear), and photodiodes (FGA01FC from Thorlabs).
4:Experimental Procedures and Operational Workflow:
Theoretical analysis and simulations were performed to ensure high bandwidth and low noise goals were met. A simplified optical testing system was built to test detector performance.
5:Data Analysis Methods:
Performance metrics such as bandwidth, gain, noise equivalent power density (NEP), and common mode rejection ratio (CMRR) were measured and analyzed.
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