Transfer Bandwidth Optimization for Multichannel Time-Correlated Single-Photon-Counting Systems Using a Router-Based Architecture: New Advancements and Results

被引:0
作者
Giudici, Andrea [1 ]
Acconcia, Giulia [1 ]
Malanga, Francesco [1 ]
Rech, Ivan [1 ]
机构
[1] Politecn Milan, Dipartimento Elettron Informaz & Bioingn, Piazza Leonardo da Vinci 32, I-20133 Milan, Italy
关键词
in vivo; imaging; multichannel; delay line; photon; router; SPAD; TCSPC; TO-DIGITAL CONVERTER; IMAGE SENSOR; SPAD SENSOR; PHASE NOISE; OF-FLIGHT; CMOS; PIXEL; TECHNOLOGY; JITTER;
D O I
10.3390/photonics10111227
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Time-correlated single-photon counting (TCSPC) is a powerful technique for time-resolved measurement of fast and weak light signals used in a variety of scientific fields, including biology, medicine, and quantum cryptography. Unfortunately, given its repetitive nature, TCSPC is recognized as a relatively slow technique. In the last ten years, attempts have been made to speed it up by developing multichannel integrated architectures. Yet, for the solutions proposed thus far, the measurement speed has not increased proportionally to the number of channels, reducing the benefits of a multichannel approach. Recent theoretical studies and prototypes have shown that it is possible to implement a new multichannel architecture, so-called router-based architecture, capable of optimizing the efficiency of data transfer from the integrated chip to the data processor, increasing the overall measurement speed. However, the first implementations failed to achieve the theoretical results due to implementation flaws. In this paper, we present a new logic for the router-based architecture that can operate at the same laser frequency and solve the issues of the previous implementation. Alongside the new logic, we present a new integrated low-jitter delay line combined with a new method for timing-signal distribution that allows the proper management of the pixel timing information. The new implementation is a step closer to realizing a router-based architecture that achieves the expected theoretical results. Simulations and bench tests support the results here reported.
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页数:18
相关论文
共 38 条
[1]   A review on high-resolution CMOS delay lines: towards sub-picosecond jitter performance [J].
Abdulrazzaq, Bilal I. ;
Halin, Izhal Abdul ;
Kawahito, Shoji ;
Sidek, Roslina M. ;
Shafie, Suhaidi ;
Yunus, Nurul Amziah Md .
SPRINGERPLUS, 2016, 5
[2]   Phase noise and jitter in CMOS ring oscillators [J].
Abidi, Asad A. .
IEEE JOURNAL OF SOLID-STATE CIRCUITS, 2006, 41 (08) :1803-1816
[3]   A 1.9 ps-rms Precision Time-to-Amplitude Converter With 782 fs LSB and 0.79%-rms DNL [J].
Acconcia, Giulia ;
Malanga, Francesco ;
Farina, Serena ;
Ghioni, Massimo ;
Rech, Ivan .
IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 2023, 72
[4]   37ps-Precision Time-Resolving Active Quenching Circuit for High-Performance Single Photon Avalanche Diodes [J].
Acconcia, Giulia ;
Ghioni, Massimo ;
Rech, Ivan .
IEEE PHOTONICS JOURNAL, 2018, 10 (06)
[5]   A CMOS SPAD Sensor With a Multi-Event Folded Flash Time-to-Digital Converter for Ultra-Fast Optical Transient Capture [J].
Al Abbas, Tarek ;
Dutton, Neale A. W. ;
Almer, Oscar ;
Finlayson, Neil ;
Della Rocca, Francescopaolo Mattioli ;
Henderson, Robert .
IEEE SENSORS JOURNAL, 2018, 18 (08) :3163-3173
[6]   A digitally controlled shunt capacitor CMOS delay line [J].
Andreani, P ;
Bigongiari, F ;
Roncella, R ;
Saletti, R ;
Terreni, P .
ANALOG INTEGRATED CIRCUITS AND SIGNAL PROCESSING, 1999, 18 (01) :89-96
[7]  
Becker Hickl, 2018, SPC-130-EMN TCSPC Series
[8]  
Becker W., 2005, Advanced Time-Correlated Single Photon Counting Techniques
[9]   Recent Advances and Future Perspectives of Single-Photon Avalanche Diodes for Quantum Photonics Applications [J].
Ceccarelli, Francesco ;
Acconcia, Giulia ;
Gulinatti, Angelo ;
Ghioni, Massimo ;
Rech, Ivan ;
Osellame, Roberto .
ADVANCED QUANTUM TECHNOLOGIES, 2021, 4 (02)
[10]  
Cominelli A., 2018, P PHOT INSTR ENG 5 S, VVolume 10539, P47