材料科学
手性(物理)
生物传感器
抗坏血酸
催化作用
合金
纳米技术
解耦(概率)
合理设计
电化学
金属
组合化学
对映体
表面工程
生物分子
对映选择合成
表面改性
化学物理
曲面(拓扑)
多路复用
化学工程
手性拆分
作者
Haijuan Luo,Muhammad Waqas,Xudong Wen,Hajra Hameed,Xianyong Yu,Hualing Yang,Hualing Yang,Chao Yang,Xueji Zhang,Huayan Yang,Huayan Yang
摘要
ABSTRACT Chirality confers unique functionalities to nanomaterials, enabling advances in molecular recognition and asymmetric catalysis. However, the development of electrochemical chiral sensors that simultaneously achieve high catalytic activity, robust enantioselectivity, and stability in complex biological media remains a grand challenge. Most existing systems rely on surface‐adsorbed chiral ligands, which are prone to desorption and instability. In this study, we present a structural engineering strategy to decouple surface electrocatalytic activity from enantiomeric recognition using intrinsically chiral Pd@AuPd alloy nanoparticles. By precisely modulating the surface Pd content, we optimized the electronic structure for high‐sensitivity ascorbic acid (AA) detection (LOD = 300 nM). Critically, ligand‐exchange experiments with achiral 11‐mercaptoundecanesulfonate (MUS) unambiguously confirmed that the enantioselectivity originates from the intrinsic helical distortion of the metal core rather than surface ligands. This “core‐determined chirality, surface‐determined activity” mechanism endows the sensor with exceptional stability and resistance to interference. Furthermore, the platform enables the ultrasensitive, simultaneous quantification of AA, dopamine (DA), and uric acid (UA) in serum. This work establishes a new paradigm for designing intrinsically chiral metallo‐biosensors, overcoming the limitations of ligand‐dependent systems.
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