[1] WANG W, LU J, NI Z. Position-sensitive detectors based on two-dimensional materials[J]. Nano research, 2021, 14: 1889-1900.
[2] DWIK S, SASIKALA G, NATARAJAN S. Advancements and applications of position-sensitive detector (PSD): a review[J]. Optoelectronics letters, 2024, 20(6): 330-338.
[3] HE C, CHEN C. A review of advanced transceiver technologies in visible light communications[J]. Photonics, 2023, 10(6): 648.
[4] LIU Z, GUAN W, WEN S. Improved target signal source tracking and extraction method based on outdoor visible light communication using an improved particle filter algorithm based on Cam-Shift algorithm[J]. IEEE photonics journal, 2019, 11(6): 1-20.
[5] UO J, FAN L, LI H. Indoor positioning systems based on visible light communication: state of the art[J]. IEEE communications surveys & tutorials, 2017, 19(4): 2871-2893.
[6] KAYMAK Y, ROJAS-CESSA R, FENG J, et al. A survey on acquisition, tracking, and pointing mechanisms for mobile free-space optical communications[J]. IEEE communications surveys & tutorials, 2018, 20(2): 1104-1123.
[7] RAJ A B, MAJUMDER A K. Historical perspective of free space optical communications: from the early dates to today’s developments[J]. IET communications, 2019, 13(16): 2405-2419.
[8] SOLAL M, MNARD L, CHARON Y, et al. A silicon continuous position sensitive diode and associated electronics: modelling and simulation[J]. Nuclear instruments and methods in physics research section A: accelerators, spectrometers, detectors and associated equipment, 2002, 477(1-3): 491-498.
[9] WANG X, YE M. Modeling and nonlinear correction of two-dimensional photoelectric position-sensitive detector[C]//Advanced Materials and Devices for Sensing and Imaging, October 14-18, Shanghai, China. Washington: SPIE, 2002: 452-460.
[10] SOLAL M C. The origin of duo-lateral position-sensitive detector distortions[J]. Nuclear instruments and methods in physics research section A: accelerators, spectrometers, detectors and associated equipment, 2007, 572(3): 1047-1055.
[11] DWIK S, SASIKALA G. Simulation and implementation of a reconfigurable dual-function pixel[J]. Optoelectronics letters, 2024, 20(8): 354-359.
[12] DWIK S, SOMASUNDARAM N. Modeling and simulation of two-dimensional position sensitive detector (PSD) sensor[J]. International journal of innovative technology and exploring engineering, 2019, 9(1): 744-753.
[13] DWIK S, SASIKALA G, NATARAJAN S. Design and simulation of a reconfigurable multifunctional optical sensor[J]. Optical memory and neural networks, 2023, 32(2): 147-157.
[14] KIM S M, WON J S. Simultaneous reception of visible light communication and optical energy using a solar cell receiver[C]//2013 International Conference on ICT Convergence (ICTC), October 14-16, 2013, Jeju Island, South Korea. New York: IEEE, 2013: 13951166.
[15] WANG Z, TSONEV D, VIDEV S, et al. On the design of a solar-panel receiver for optical wireless communications with simultaneous energy harvesting[J]. IEEE journal on selected areas in communications, 2015, 33(8): 1612-1623.
[16] FAKIDIS J, HELMERS H, HAAS H. Simultaneous wireless data and power transfer for a 1-Gb/s GaAs VCSEL and photovoltaic link[J]. IEEE photonics technology letters, 2020, 32(19): 1277-1280.
[17] WANG H Y, WU J T, CHOW C W, et al. Using pre-distorted PAM-4 signal and parallel resistance circuit to enhance the passive solar cell based visible light communication[J]. Optics communications, 2018, 407: 245-249.
[18] KONG M, LIN J, GUO Y, et al. AquaE-lite hybrid-solar-cell receiver-modality for energy-autonomous terrestrial and underwater Internet-of-Things[J]. IEEE photonics journal, 2020, 12(4): 1-3.
[19] KONG M, KANG C H, ALKHAZRAGI O, et al. Survey of energy-autonomous solar cell receivers for satellite-air-ground-ocean optical wireless communication[J]. Progress in quantum electronics, 2020, 74: 100300.
[20] DWIK S, LORDWIN C P M. Survey on energy harvesting CMOS sensor based digital camera[J]. Optical memory and neural networks, 2022, 31(1): 97-106.
[21] NAYAR S K, SIMS D C, FRIDBERG M. Towards self-powered cameras[C]//2015 IEEE International Conference on Computational Photography (ICCP), April 24-26, 2015, Houston, TX, USA. New York: IEEE, 2015: 15345860.
[22] LAW M K, BERMAK A, SHI C. A low-power energy-harvesting logarithmic CMOS image sensor with reconfigurable resolution using two-level quantization scheme[J]. IEEE transactions on circuits and systems II: express briefs, 2011, 58(2): 80-84.
[23] WANG H T, LEON-SALAS W D. An image sensor with joint sensing and energy harvesting functions[J]. IEEE sensors journal, 2014, 15(2): 902-916.
[24] FISH A, HAMAMI S, YADID-PECHT O. Self-powered active pixel sensors for ultra low-power applications[C]//2005 IEEE International Symposium on Circuits and Systems, May 23-26, 2005, Kobe, Japan. New York: IEEE, 2005: 8632951.
[25] PIMENTEL P M, RDIGER B, SCHMIDT C, et al. Cube laser communication terminal (CubeLCT) state of the art[J]. Acta astronautica, 2023, 211: 326-332.
[26] ZHANG P, LIU J, YANG H, et al. Position measurement of laser center by using 2-D PSD and fixed-axis rotating device[J]. IEEE access, 2019, 7: 140319-140327.
[27] DE-LA-LLANA-CALVO , LZARO-GALILEA J L, GARDEL-VICENTE A, et al. Indoor positioning system based on LED lighting and PSD sensor[C]//2019 International Conference on Indoor Positioning and Indoor Navigation (IPIN), September 30-October 3, 2019, Pisa, Italy. New York: IEEE, 2019: 1-8.
[28] IVAN I A, ARDELEANU M, LAURENT G J. High dynamics and precision optical measurement using a position sensitive detector (PSD) in reflection-mode: application to 2D object tracking over a smart surface[J]. Sensors, 2012, 12(12): 16771-16784.
[29] MICHAEL P R, JOHNSTON D E, MORENO W. A conversion guide: solar irradiance and lux illuminance[J]. Journal of measurements in engineering, 2020, 8(4): 153-166.
[30] LEI W, CHEN Z, XU Y, et al. Negatively biased solar cell optical receiver for underwater wireless optical communication system with low peak average power ratio[J]. IEEE photonics journal, 2022, 14(4): 1-9.
[31] LEON-SALAS W D, FAN X, VIZCARDO M, et al. A solar cell photo-luminescence modulator for optical communications[J]. IEEE transactions on circuits and systems II: express briefs, 2022, 69(6): 2757-2761.