论文标题

通过应变设备不对称性,很大程度上增强了磷酸光探测器中的光藻素效应

Largely enhanced photogalvanic effects in the phosphorene photodetector by strain-increased device asymmetry

论文作者

Zhao, Juan, Hu, Yibin, Xie, Yiqun, Zhang, Lei, Wang, Yin

论文摘要

在非中心对称材料中发生的光钙效应(PGE)使开路电压的产生比带隙大得多,从而使其在太阳能电池中相当有吸引力。但是,PGE光电流的大小通常很小,这严重阻碍了其实际应用。在这里,我们提出了一种机制,可以基于二维镍磷酸 - 磷酸 - 尼克尔光电探测器的量子传输模拟来大大增强通过机械应变增强PGE光电流。由CS非中心对称性控制的宽带PGE光电流在线性极化光的照明下以零偏置产生。光电流线性地取决于设备不对称,而非线性则取决于光吸收。通过将适当的机械张力应力应用于磷烯,可以通过多达3个数量级来大大增强光电流,这主要归因于大量增加的设备不对称性。在某些情况下,光吸收的变化也可能在调整非线性依赖性引起的光电流中起关键作用。此外,机械弯曲甚至可以进一步增强光电流,这主要是由于设备不对称的大大增强。我们的结果揭示了PGE光电流对设备不对称和通过设备传输过程中的吸收的依赖性,还探索了PGE在自动的低维柔性光电上的电势。

Photogalvanic effect (PGE) occurring in noncentrosymmetric materials enables the generation of the open-circuit voltage that is much larger than the bandgap, making it rather attractive in solar cells. However, the magnitude of the PGE photocurrent is usually small, which severely hampers its practical application. Here we propose a mechanism to largely enhance the PGE photocurrent by mechanical strain based on the quantum transport simulations for the two-dimensional nickel-phosphorene-nickel photodetector. Broadband PGE photocurrent governed by the Cs noncentrosymmetry is generated at zero bias under the illumination of linearly polarized light. The photocurrent depends linearly on the device asymmetry, while nonlinearly on the optical absorption. By applying the appropriate mechanical tension stress on the phosphorene, the photocurrent can be substantially enhanced by up to 3 orders of magnitude, which is primarily ascribed to the largely increased device asymmetry. The change in the optical absorption in some cases can also play a critical role in tuning the photocurrent due to the nonlinear dependence. Moreover, the photocurrent can even be further enhanced by the mechanical bending, mainly owing to the considerably enhanced device asymmetry. Our results reveal the dependence of the PGE photocurrent on the device asymmetry and absorption in transport process through a device, and also explore the potentials of the PGE in the self-powered low-dimensional flexible optoelectronics.

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