Perovskite single crystals with tin–lead gradient for improved ionization radiation detection

Author:

Wu Jie1ORCID,Wang Xin1,Xu Yubing1,Pan Yuzhu1,Chai Shunjie1,Zhao Jingda1,Cheng Qi1,Zhao Zhiwei1,Li Qing1,Bae Byung Seong2ORCID,Fayemi Omolola Esther3,Zhou Jianming4ORCID,Zhu Ying5ORCID,Lei Wei1ORCID

Affiliation:

1. School of Electronic Science and Engineering, Joint International Research Laboratory of Information Display and Visualization, Southeast University 1 , Nanjing 210096, Jiangsu, China

2. Department of Electronics and Display Engineering Hoseo University 2 , Hoseo Ro 79, Asan City, Chungnam 31499, Republic of Korea

3. Department of Chemistry, School of Mathematics and Physical Sciences Faculty of Natural and Agricultural Sciences North-West University, Mafikeng Campus 3 , Private Bag X2046, Mmabatho 2735, South Africa

4. E-spectrum Optoelectronic Co. Ltd. 4 , Suzhou 215111, China

5. E-xray Electronic Co. Ltd. 5 , Suzhou 215131, China

Abstract

Compared with the pure lead-based MAPbBr3 (MA = CH3NH3) perovskite single crystals (PSCs), tin–lead alloy (MAPbxSn1−xBr3) PSCs with higher carrier mobility and longer carrier lifetime are expected to perform as better-quality ionization radiation detectors. In this work, we design MAPbBr3–MAPb0.9Sn0.1Br3–MAPb0.8Sn0.2Br3 structure detectors by employing solution-process epitaxial growth. Because of the gradient change in tin element proportion, the relatively low mismatch rates between different PSC layers can effectively reduce defects generated at the interface, which improves charge collection efficiency. Moreover, band barriers between different PSC layers form depletion layers due to the differences in band structure, and the high resistivity and built-in electric field of depletion layers can suppress dark current under high voltages. The optimized detector exhibits a high x-ray detection sensitivity of 6.76 × 104μC Gy−1 cm−2 and the lowest detectable dose rate of 7.4 nGy s−1 under 40 kVp x-ray radiation. Based on 241Am (5.95 MeV) α particle irradiation, tin–lead HD has lower detection noise and more obvious response compared to MAPbBr3 PSCs. The electron mobility was indicated as high as 612 cm2 s−1 V−1, and the mobility-lifetime (μτ) products were measured to be 3.5 × 10−3 cm2 V−1 using the Hecht equation, demonstrating superior transport properties.

Funder

National Key Research and Development Program of China

National Natural Science Foundation Project of China

National Natural Science Foundation Project for Young Researcher

Program 111_2.0 in China

Leading Technology of Jiangsu Basic Research Plan

International cooperative research project of Jiangsu Province

Basic Research Program of Jiangsu Province

Publisher

AIP Publishing

Subject

General Engineering,General Materials Science

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