光电流
瞬态(计算机编程)
光电导性
光电子学
材料科学
光伏
瞬态响应
肖特基二极管
光电二极管
肖特基势垒
半导体
光电探测器
砷化镓
极性(国际关系)
共发射极
整改
偏压
半导体器件
兴奋剂
动力学(音乐)
载流子寿命
作者
Xianchun Qiu,He Huang,Meng Zhu,Zhaona Wang
摘要
Transient photocurrents are promising for applications in intelligent sensing and high-performance photovoltaics due to their fast response and high efficiency. However, the physical origin of transient spike photocurrents in semiconductor devices remains debatable. Here, we design a hybrid Mn-doped n-ZnO/p-Si and p-Si/Al Schottky structure, which exhibits a bipolar transient photocurrent due to junction competition. This provides an ideal platform for quantifying quasi-Fermi level dynamics during instantaneous illumination. By tuning the Mn doping concentration in ZnO and the illumination wavelength, we control the photogenerated carrier distribution in the Si interlayer, modulating the quasi-Fermi level profile and splitting at each junction. This approach allows the precise regulation of the amplitude and even polarity of the net transient photocurrent. This bipolar photoresponse enables a quantitative and predictive model that correlates macroscopic transient photocurrent with the microscopic quasi-Fermi level splitting, providing a smart way to tailor transient photocurrent via dynamic band alignment engineering.
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