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使用全溶液处理的异质结表面修饰钙钛矿单晶进行高能光子能谱学研究。

High-Energy Photon Spectroscopy Using All Solution-Processed Heterojunctioned Surface-Modified Perovskite Single Crystals.

机构信息

Department of Electrical and Computer Engineering , University of Michigan , 1301 Beal Avenue , Ann Arbor , Michigan 48109 , United States.

Department of Nuclear Engineering and Radiological Sciences , University of Michigan , 2301 Bonisteel Blvd. , Ann Arbor , Michigan 48109 , United States.

出版信息

ACS Appl Mater Interfaces. 2019 Sep 11;11(36):33399-33408. doi: 10.1021/acsami.9b09381. Epub 2019 Aug 29.

Abstract

Organic-inorganic hybrid perovskites have been intensively studied for their use in optoelectronic devices due to their utilization of low-cost, earth-abundant precursors that are solution-processed at low-temperatures into high-quality devices. Despite this progress, interdevice variability and long-term stability have prevented the widespread commercial adoption of perovskite devices, especially for high-energy photon detectors. Using methylammonium lead iodide perovskite single crystals grown via inverse-temperature crystallization, we demonstrate a facile solution-based technique to coat the single-crystalline bulk with a micrometer-scale thick surface layer comprised of a wider band gap two-dimensional Ruddlesden-Popper (RP) hybrid perovskite. The resulting perovskite room-temperature γ-ray detector devices exhibit greatly improved device yield and repeatability from run-to-run and device-to-device within a given processing run. With an energy resolution of under 15% (12.0 keV) for incident 81 keV photons, this solution-based technique resolves interdevice variability concerns and could pave the way for low-cost, scalable manufacturing of optoelectronic devices based on RP hybrid perovskite films.

摘要

有机-无机杂化钙钛矿由于其利用低成本、丰富的地球前体,以低温溶液处理方式制备高质量器件,因此在光电子器件中得到了广泛研究。尽管取得了这些进展,但器件间的变异性和长期稳定性阻碍了钙钛矿器件的广泛商业应用,特别是对于高能光子探测器。使用通过逆温结晶生长的碘化甲基铵铅钙钛矿单晶,我们展示了一种简便的基于溶液的技术,可在单晶块体上涂覆具有微米级厚度的表面层,该表面层由更宽带隙二维 Ruddlesden-Popper(RP)混合钙钛矿组成。所得的钙钛矿室温γ射线探测器器件在给定的处理运行中,在运行到运行和器件到器件的过程中,大大提高了器件的产量和可重复性。对于入射的 81keV 光子,其能量分辨率低于 15%(12.0keV),这种基于溶液的技术解决了器件间的变异性问题,并为基于 RP 混合钙钛矿薄膜的低成本、可扩展的光电设备制造铺平了道路。

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