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通过双极黑磷烯的双界面定位实现协同级联载流子提取用于高效钙钛矿太阳能电池

Synergistic Cascade Carrier Extraction via Dual Interfacial Positioning of Ambipolar Black Phosphorene for High-Efficiency Perovskite Solar Cells.

作者信息

Zhang Meng, Ye Meidan, Wang Wenlong, Ma Chunyuan, Wang Shun, Liu Qiliang, Lian Tianquan, Huang Jinsong, Lin Zhiqun

机构信息

School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, GA, 30332, USA.

National Engineering Laboratory for Reducing Emissions from Coal Combustion, School of Energy and Power Engineering, Shandong University, Jinan, 250061, P. R. China.

出版信息

Adv Mater. 2020 Jul;32(28):e2000999. doi: 10.1002/adma.202000999. Epub 2020 May 14.

Abstract

2D black phosphorene (BP) carries a stellar set of physical properties such as conveniently tunable bandgap and extremely high ambipolar carrier mobility for optoelectronic devices. Herein, the judicious design and positioning of BP with tailored thickness as dual-functional nanomaterials to concurrently enhance carrier extraction at both electron transport layer/perovskite and perovskite/hole transport layer interfaces for high-efficiency and stable perovskite solar cells is reported. The synergy of favorable band energy alignment and concerted cascade interfacial carrier extraction, rendered by concurrent positioning of BP, delivered a progressively enhanced power conversion efficiency of 19.83% from 16.95% (BP-free). Investigation into interfacial engineering further reveals enhanced light absorption and reduced trap density for improved photovoltaic performance with BP incorporation. This work demonstrates the appealing characteristic of rational implementation of BP as dual-functional transport material for a diversity of optoelectronic devices, including photodetectors, sensors, light-emitting diodes, etc.

摘要

二维黑磷(BP)具有一系列出色的物理特性,例如其带隙便于调节,且双极性载流子迁移率极高,适用于光电器件。在此,本文报道了将具有定制厚度的BP作为双功能纳米材料进行合理设计和定位,以同时增强电子传输层/钙钛矿和钙钛矿/空穴传输层界面处的载流子提取,从而实现高效且稳定的钙钛矿太阳能电池。通过同时定位BP实现的有利能带能量对准和协同级联界面载流子提取的协同作用,使功率转换效率从无BP时的16.95%逐步提高到19.83%。对界面工程的研究进一步表明,加入BP可增强光吸收并降低陷阱密度,从而改善光伏性能。这项工作展示了将BP合理用作双功能传输材料应用于包括光电探测器、传感器、发光二极管等多种光电器件的诱人特性。

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