卤化物
暗电流
材料科学
钙钛矿(结构)
离子
光电流
空间电荷
探测器
光电子学
结晶度
离子流
化学物理
分析化学(期刊)
电压
偏压
光学
光电探测器
物理
无机化学
化学
结晶学
电子
量子力学
复合材料
色谱法
作者
Agustín O. Alvarez,Marisé García‐Batlle,Ferdinand Lédée,Eric Gros‐Daillon,Javier Mayén Guillén,Jean‐Marie Verilhac,Thibault Lemercier,Julien Zaccaro,Lluı́s F. Marsal,Osbel Almora,Germà García-Belmonte
标识
DOI:10.1002/aelm.202400241
摘要
Abstract The inherent ion migration in metal halide perovskite materials is known to induce deleterious and highly unstable dark currents in X‐ and γ ‐ray detectors based on those compounds upon bias application. Dark current slow drift with time is identified as one of the major drawbacks for these devices to satisfy industrial requirements. Because dark current establishes the detectability limit, current evolution, and eventual growth may mask photocurrent signals produced by incoming X‐ray photons. Relevant information for detector assessment is ion‐related parameters such as ion concentration, ion mobility, and ionic space‐charge zones that are eventually built near the outer contacts upon detector biasing. A combined experimental (simple measurement of dark current transients) and 1D numerical simulation method is followed here using single‐crystal and microcrystalline millimeter‐thick methylammonium‐lead bromide that allows extracting ion mobility within the range of µ ion ≈ 10 −7 cm 2 V −1 s −1 , while ion concentration values approximate N ion ≈ 10 15 cm −3 , depending on the perovskite crystallinity.
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