Huang Jianfei, Lee Jaewon, Nakayama Hidenori, Schrock Max, Cao David Xi, Cho Kilwon, Bazan Guillermo C, Nguyen Thuc-Quyen
Center for Polymers and Organic Solids, University of California, Santa Barbara, California 93106, United States.
Department of Chemical Engineering and Applied Chemistry, Chungnam National University, Daejeon 34134, Republic of Korea.
ACS Nano. 2021 Jan 26;15(1):1753-1763. doi: 10.1021/acsnano.0c09426. Epub 2021 Jan 13.
Continuously enhanced photoresponsivity and suppressed dark/noise current combinatorially lead to the recent development of high-detectivity organic photodetectors with broadband sensing competence. Despite the achievements, reliable photosensing enabled by organic photodetectors (OPDs) still faces challenges. Herein, we call for heed over a universal phenomenon of detrimental sensitivity of dark current to illumination history in high-performance inverted OPDs. The phenomenon, unfavorable to the attainment of high sensitivity and consistent figures-of-merit, is shown to arise from exposure of the commonly used electron transport layer in OPDs to high-energy photons and its consequent loss of charge selectivity systematic studies. To solve this universal problem, "double" layer tin oxide as an alternative electron transport layer is demonstrated, which not only eliminates the inconsistency between the initial and after-illumination dark current characteristics but also preserves the low magnitude of dark current, good external quantum efficiency, and rapid transient response.
不断增强的光响应性和抑制的暗电流/噪声电流共同推动了近期具有宽带传感能力的高探测率有机光电探测器的发展。尽管取得了这些成就,但有机光电探测器(OPD)实现可靠的光传感仍面临挑战。在此,我们呼吁关注高性能倒置OPD中暗电流对光照历史有害敏感性的普遍现象。这种现象不利于实现高灵敏度和一致的品质因数,经系统研究表明,它源于OPD中常用的电子传输层暴露于高能光子及其随之而来的电荷选择性丧失。为了解决这个普遍问题,我们展示了“双层”氧化锡作为替代电子传输层,它不仅消除了初始和光照后暗电流特性之间的不一致,还保持了低暗电流幅度、良好的外部量子效率和快速的瞬态响应。