光电流
化学
级联
各向异性
圆极化
极化(电化学)
自旋(空气动力学)
析氧
光电子学
化学物理
自旋极化
电化学
分子物理学
光化学
电极
载流子
生物传感器
非线性光学
激发态
非线性光学
荧光各向异性
纳米技术
非线性系统
共价键
激发
时间演化
联轴节(管道)
信号(编程语言)
合理设计
作者
Miao Zhang,Shanshan Liu,Guangyuan Feng,Xuejiao Gao,Li X,Li X,Zhiping Liu,Ke Xu,Steven De Feyter,Yanfeng Dang,Li X,Li X,Shengbin Lei
摘要
The interaction between circularly polarized light (CPL) and chiral matter generates spin-polarized charge carriers; however, efficiently converting this microscopic spin imbalance into a macroscopic electrical signal remains a central challenge in CPL detection. Herein, we present an electrochemical CPL detection platform based on a metalated chiral covalent organic framework (CCOF), where CPL-induced spin polarization is coupled with the spin-selective oxygen evolution reaction (OER) to enable nonlinear transduction of spin polarization into an amplified electrical response. The nonlinear spin-dependent OER kinetics serves as an internal gain module that amplifies the electrical readout of spin imbalance, transforming CPL detection from a direct light-to-current conversion into a cascade process involving spin generation, nonlinear transduction of spin polarization, and current readout, resulting in a pronounced enhancement of the photocurrent anisotropy beyond that achievable in solid-state CPL detectors. Furthermore, systematic substitution of Co with heavier Ru and Re centers establishes a correlation among spin–orbit coupling (SOC) strength, microscopic chiroptical response (gCD and PCPL), and macroscopic device performance (GIph). This cascade spin generation-nonlinear electrochemical amplification strategy boosts the photocurrent anisotropy factor (GIph) to as high as 0.52, providing a rational approach for the systematic enhancement of CPL detection performance.
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