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Non-equilibrium modelling of avalanche photodiode speed

机译:雪崩光电二极管速度的非平衡建模

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Avalanche photodiodes (APDs) are particularly suited to detecting weak optical signals. However, in general, they suffer from a bandwidth limitation imposed by carrier feedback within the avalanche process. Although faster response times can be obtained by reducing the length of the avalanche region, dead space increasingly degrades the improvement relative to predictions from a purely local ionization model using the same velocities for the carriers. Conventionally these velocities are chosen to be the carriers' saturated drift velocities, V{sub}s. However, our recent Monte Carlo (MC) modelling showed that an enhancement in the mean velocities of carriers to ionization in short (<0.3μm) APDs produces a much faster avalanche speed than a model with similar spatial ionization using saturated drift velocities. This velocity enhancement promises to compensate for the dead space degradation although the extent is not clear. For example, if the velocity enhancement overcompensates, APD bandwidth will be greater than expected from a local ionization model using V{sub}s. Since the latter (conventional) model is particularly popular for APD bandwidth a study of its accuracy in a non-equilibrium regime is desirable.
机译:雪崩光电二极管(APDS)特别适用于检测弱光信号。然而,通常,它们遭受雪崩过程内的载波反馈施加的带宽限制。尽管通过减小雪崩区域的长度可以获得更快的响应时间,但是死空间越来越地降低了相对于使用载流子的相同速度的纯粹局部电离模型的预测的改进。通常,这些速度被选择为载体的饱和漂移速度,V {sub}。然而,我们最近的蒙特卡罗(MC)建模表明,短(<0.3μm)APD的载体的平均速度的增强比使用饱和漂移速度相似空间电离的模型产生更快的雪崩速度。虽然范围尚不清楚,但这种速度增强应该补偿死亡空间劣化。例如,如果速度增强过度补偿,则使用V {Sub} S从局部电离模型的APD带宽将大于预期。由于后者(常规)模型特别受到APD带宽,因此期望其在非平衡状态下的精度研究。

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