材料科学
杠杆(统计)
钙钛矿(结构)
卤化物
存水弯(水管)
光电子学
合理设计
带隙
探测器
格子(音乐)
纳米技术
计算机数据存储
密度泛函理论
极限(数学)
电子
桥接(联网)
水准点(测量)
工作(物理)
宽带
分子工程
光电效应
化学物理
载流子
包层(金属加工)
信号(编程语言)
晶格常数
纳米晶
作者
Tianshuai Lyu,Xing Shu,Bibo Lou,Zhanhua Wei
摘要
ABSTRACT Halide perovskite X‐ray detectors have reached impressive sensitivities, but their charge‐trapping behavior remains a serendipitous property rather than a designed one. We introduce compositional gradient engineering as a paradigm to actively program the trap‐state landscape. In Sb 3+ ‐doped Cs 2 NaSc 1‐x Lu x Cl 6 perovskites, we leverage Sc/Lu gradients to induce tailored lattice disorder, enabling predictive control over both trap density and depth. This is visualized by a fully tunable thermoluminescence spectrum from 100 to 550 K, a signature of programmable trap energies distinct from systems like Cs 2 Sn 1‐x Zr x Cl 6 tuned solely for bandgap shifting. The Sb 3+ activator, with its unique ns 2 configuration, is integral to this design, functioning as a co‐engineered, dual‐functional trap modulator that provides both deep electron and deep hole traps. The optimized phosphor's charge storage capacity surpasses the commercial benchmark BaFBr(I):Eu 2+ by 4.5 times, enabling an ultra‐low detection limit of ∼99 nGy air /s and excellent stability (87% signal retention after one hour). This work establishes a rational design principle for functional trap‐state programming, moving beyond serendipitous discovery to the intentional engineering of storage properties in halide perovskites for advanced, temperature‐resilient radiography.
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