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Impact ionization engineered avalanche photodiode arrays for free space optical communication

机译:碰撞电离工程设计的雪崩光电二极管阵列,用于自由空间光通信

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High sensitivity photodetectors serve two purposes in free space optical communication: data reception and position sensing for pointing, tracking, and stabilization. Because of conflicting performance criteria, two separate detectors are traditionally utilized to perform these tasks but recent advances in the fabrication and development of large area, low noise avalanche photodiode (APD) arrays have enabled these devices to be used both as position sensitive detectors (PSD) and as communications receivers. Combining these functionalities allows for more flexibility and simplicity in optical assembly design without sacrificing the sensitivity and bandwidth performance of smaller, single element data receivers. Beyond eliminating the need to separate the return beam into two separate paths, these devices enable implementation of adaptive approaches to compensate for focal plane beam wander and breakup often seen in highly scintillated terrestrial and maritime optical links. While the Naval Research Laboratory (NRL) and Optogration Inc, have recently demonstrated the performance of single period, InAlAs/InGaAs APD arrays as combined data reception and tracking sensors, an impact ionization engineered (I~2E) epilayer design achieves even lower carrier ionization ratios by incorporating multiple multiplication periods engineered to suppress lower ionization rate carriers while enhancing the higher ionization rate carriers of interest. This work presents a three period I~2E concentric, five element avalanche photodiode array rated for bandwidths beyond 1GHz with measured carrier ionization ratios of 0.05-0.1 at moderate APD gains. The epilayer design of the device will be discussed along with initial device characterization and high speed performance measurements.
机译:高灵敏度光电探测器在自由空间光通信中有两个用途:数据接收和用于指向,跟踪和稳定的位置感测。由于性能标准的冲突,传统上使用两个单独的检测器来执行这些任务,但是在大面积制造和开发中的最新进展是,低噪声雪崩光电二极管(APD)阵列使这些设备可用作位置敏感检测器(PSD) )并作为通信接收者。结合这些功能可以在光学组件设计中提供更大的灵活性和简便性,而不会牺牲较小的单元件数据接收器的灵敏度和带宽性能。除了消除将返回光束分成两条独立路径的需要之外,这些设备还实现了自适应方法,以补偿焦平面光束的漂移和破裂,这在高度闪烁的地面和海上光学链路中经常出现。尽管海军研究实验室(NRL)和Optogration Inc最近证明了单周期InAlAs / InGaAs APD阵列作为组合数据接收和跟踪传感器的性能,但碰撞电离工程(I〜2E)外延层设计可实现更低的载流子电离通过并入多个倍增周期来设计比率,以抑制较低电离速率的载流子,同时增强所需的较高电离速率的载流子。这项工作提出了一个三周期I〜2E同心五元素雪崩光电二极管阵列,额定带宽超过1GHz,在中等APD增益下测得的载流子电离比为0.05-0.1。将讨论器件的外延层设计以及初始器件表征和高速性能测量。

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