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Linear detection of sub-bandgap energy photons in silicon: A photo-assisted Shockley-Read mechanism

机译:硅中亚带隙能量光子的线性检测:一种光辅助的Shockley-Read机制

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Two-photon absorption is a third-order process and, as such, displays a quadratic dependence relatively to the incident light intensity. This TPA process has been harnessed in a new generation of ultrafast light intensity correlator setups [1,2]. This quadratic dependence of the photocurrent to the sub-bandgap light intensity has been checked in various semiconductor-based devices, and verified over more than 8 orders of magnitude in GaAs or GaN light sensors. This is not the case in the silicon-based devices that have been investigated by various authors [1,3]: while a quadratic dependence is clearly observed at relatively high optical fluxes (typically above 10 μW in a diffraction-limited situation at a wavelength of 1.55 μm), a linear dependence is systematically observed in the low flux regime. Here we show that this linear absorption of sub-bandgap energy photons in silicon originates from a photo-assisted Shockley-Read (SR) process [4]. In this process, sub-bandgap energy photons promote electrons from deep level traps to the conduction band, freeing quantum states on these levels. These newly freed states contribute to the SR capture-recombination mechanism, and thus enhance the dark current of the silicon diode.
机译:双光子吸收是一个三阶过程,因此,相对于入射光强度显示出二次依赖性。在新一代的超快光强度相关器设置中已经采用了这种TPA工艺[1,2]。光电流对子带隙光强度的这种二次依赖性已经在各种基于半导体的器件中得到了检验,并在GaAs或GaN光传感器中验证了超过8个数量级。各种作者研究过的硅基器件并非如此[1,3]:在较高的光通量下(在波长受限的衍射极限情况下,通常高于10μW时)可以清楚地观察到二次相关性。在低通量状态下系统观察到线性相关性为1.55μm)。在这里,我们表明硅中亚带隙能量光子的线性吸收源自光辅助的Shockley-Read(SR)过程[4]。在此过程中,子带隙能级光子将电子从深能级陷阱提升到导带,从而在这些能级上释放出量子态。这些新释放的状态有助于SR捕获重组机制,从而增强了硅二极管的暗电流。

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