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29.7 A 500Mb/s -46.1dBm CMOS SPAD Receiver for Laser Diode Visible-Light Communications

机译:29.7 A 500Mb / s -46.1dBm CMOS SPAD接收器,用于激光二极管可见光通信

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III-nitride laser diodes (LDs) are promising sources for light fidelity (LiFi) networks, underwater wireless optical communications (UWOC), and plastic optical fiber (POF) communications [1] due to their high modulation bandwidths (>5GHz) compared to LEDs (<;20MHz). Their narrow linewidths also enable robust free-space Gb/s LiFi links in the presence of high intensities of sunlight through selective spectral filtering. Fully integrated CMOS visible light communications (VLC) receivers have recently been developed to enable miniaturised and low cost Gb/s LD-based links [2]. Sensitivity of these devices is constrained by electrical noise sources such as thermal, shot or excess noise related to the employment of PIN photodiodes (PDs) or linear avalanche photodiodes (APDs) and their amplification circuits. The extremely high gain of SPADs operating in Geiger mode allows quantum sensitivity limits to be approached [3, 4]. A SPAD receiver (RX) for fiber optic applications achieved 200Mb/s at 6.5×10-3 BER within 24dB of the quantum limit [3]. In this paper, we demonstrate a fully integrated CMOS SPAD RX SoC extending this data rate by 2.5× to 500Mb/s, whilst improving sensitivity to -46.1dBm, reducing the margin to the quantum limit to only 15dB. Our RX architecture permits massively parallel (4096) photon event summation to be achieved at a high fill-factor (43%) and sample rate (800MHz). Detector redundancy obviates the requirement on current RX implementations that the SPAD dead time be matched to the symbol period to achieve the maximum data rate [3, 4, 5]. Another advantage is that complex modulation schemes such as OFDM or PAM can be applied for high spectral efficiency and multipath interference mitigation. We demonstrate the RX in a practical, background insensitive VLC link at 1m in 1klx ambient conditions using a 450nm LD. The higher power consumption and dead time pile-up nonlinearity of the SPADs at high signal levels, leads us to conclude that the practical use of this device to be in assistance (rather than replacement) of existing APD or PIN RXs for LiFi, UWOC and POF applications towards extended link range or maintaining a low rate link in highly scattering environments.
机译:III型氮化物激光二极管(LD)由于具有高的调制带宽(> 5GHz),是光保真(LiFi)网络,水下无线光通信(UWOC)和塑料光纤(POF)通信的有前途的光源[1]。 LED(<; 20MHz)。它们的窄线宽还可以通过选择性光谱过滤在存在高强度阳光的情况下实现强大的自由空间Gb / s LiFi链接。最近已经开发出完全集成的CMOS可见光通信(VLC)接收器,以实现基于Gb / s LD的小型化和低成本链路[2]。这些设备的灵敏度受到电噪声源(例如热噪声,散粒噪声或与使用PIN光电二极管(PD)或线性雪崩光电二极管(APD)及其放大电路有关的过量噪声)的约束。在盖革模式下运行的SPAD具有极高的增益,可以接近量子灵敏度极限[3,4]。用于光纤应用的SPAD接收器(RX)在6.5×10时达到200Mb / s -3 BER在量子极限的24dB之内[3]。在本文中,我们演示了一种完全集成的CMOS SPAD RX SoC,该数据速率将数据速率扩展了2.5倍至500Mb / s,同时将灵敏度提高到了-46.1dBm,将余量减小到了量子极限,仅为15dB。我们的RX体系结构允许以高填充因子(43%)和采样率(800MHz)实现大规模并行(4096)光子事件求和。检测器冗余消除了对当前RX实现的要求,即SPAD死区时间与符号周期匹配,以实现最大数据速率[3、4、5]。另一个优点是可以将复杂的调制方案(例如OFDM或PAM)应用于高频谱效率和多径干扰缓解。我们使用450nm LD在1klx环境条件下在1m的实际,背景不敏感的VLC链路中演示了RX。 SPAD在高信号电平下具有更高的功耗和停滞时间堆积非线性,使我们得出结论,该设备的实际使用是为了帮助(而不是替代)现有的用于LiFi,UWOC和ADSL的APD或PIN RX。 POF应用可扩展链接范围或在高度分散的环境中维持低速率链接。

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