光电流
光电探测器
响应度
化学
暗电流
光电子学
富勒烯
共轭体系
接受者
偏压
有机太阳能电池
材料科学
电压
聚合物
有机化学
物理
量子力学
凝聚态物理
作者
Boyuan Zhang,M. Tuan Trinh,Brandon Fowler,Melissa L. Ball,Qizhi Xu,Fay Ng,Michael L. Steigerwald,Xiaoyang Zhu,Colin Nuckolls,Yu Zhong
摘要
Organic photodetectors (OPDs) are attractive for their high optical absorption coefficient, broad wavelength tunability, and compatibility with lightweight and flexible devices. Here we describe a new molecular design that enables high performance organic photodetectors. We use a rigid, conjugated macrocycle as the electron acceptor in devices to obtain high photocurrent and low dark current. We make a direct comparison between the devices made with the macrocyclic acceptor and an acyclic control molecule; we find that the superior performance of the macrocycle originates from its rigid, conjugated, and cyclic structure. The macrocycle's rigid structure reduces the number of charged defects originating from deformed sp2 carbons and covalent defects from photo/thermoactivation. With this molecular design, we are able to suppress dark current density while retaining high responsivity in an ultrasensitive nonfullerene OPD. Importantly, we achieve a detectivity of ∼1014 Jones at near zero bias voltage. This is without the need for extra carrier blocking layers commonly employed in fullerene-based devices. Our devices are comparable to the best fullerene-based photodetectors, and the sensitivity at low working voltages (<0.1 V) is a record for nonfullerene OPDs.
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