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硫化锡量子点增强无碳基空穴传输层的可见光探测器。

SnS Quantum Dots Enhancing Carbon-Based Hole Transport Layer-Free Visible Photodetectors.

作者信息

Zhang Rui, Li Jing, Liao Sainan, Huang Shuxin, Shen Chenguang, Chen Mengwei, Yang Yingping

机构信息

Department of Physics, School of Science, Wuhan University of Technology, Wuhan 430070, China.

出版信息

Nanomaterials (Basel). 2024 May 29;14(11):956. doi: 10.3390/nano14110956.

Abstract

The recombination of charges and thermal excitation of carriers at the interface between methylammonium lead iodide perovskite (PVK) and the carbon electrode are crucial factors that affect the optoelectronic performance of carbon-based hole transport layer (HTL)-free perovskite photodetectors. In this work, a method was employed to introduce SnS quantum dots (QDs) on the back surface of perovskite, which passivated the defect states on the back surface of perovskite and addressed the energy-level mismatch issue between perovskite and carbon electrode. Performance testing of the QDs and the photodetector revealed that SnS QDs possess energy-level structures that are well matched with perovskite and have high absorption coefficients. The incorporation of these QDs into the interface layer effectively suppresses the dark current of the photodetector and greatly enhances the utilization of incident light. The experimental results demonstrate that the introduction of SnS QDs reduces the dark current by an order of magnitude compared to the pristine device at 0 V bias and increases the responsivity by 10%. The optimized photodetector exhibits a wide spectral response range (350 nm to 750 nm), high responsivity (0.32 A/W at 500 nm), and high specific detectivity (>1 × 10 Jones).

摘要

甲脒碘化铅钙钛矿(PVK)与碳电极之间界面处的电荷复合以及载流子的热激发是影响无碳基空穴传输层(HTL)钙钛矿光电探测器光电性能的关键因素。在这项工作中,采用了一种方法在钙钛矿的背面引入硫化锡量子点(QDs),其钝化了钙钛矿背面的缺陷态并解决了钙钛矿与碳电极之间的能级失配问题。对量子点和光电探测器的性能测试表明,硫化锡量子点具有与钙钛矿良好匹配的能级结构并且具有高吸收系数。将这些量子点掺入界面层有效地抑制了光电探测器的暗电流并极大地提高了入射光的利用率。实验结果表明,与在0 V偏压下的原始器件相比,引入硫化锡量子点可使暗电流降低一个数量级,并使响应度提高10%。优化后的光电探测器表现出宽光谱响应范围(350 nm至750 nm)、高响应度(在500 nm处为0.32 A/W)和高比探测率(>1×10琼斯)。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b5eb/11173682/7c67547c445b/nanomaterials-14-00956-g001a.jpg

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