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◆ Analytical Chemistry2025-11-21· Electrolyte

Breaking the Dual-Interface Limitation: A Magnetically Controlled Ratiometric Photoelectrochemical Sensor Using Lattice-Strained BiOBr and a Ferrocyanide–Ascorbic Acid Hybrid Electrolyte

Qian Cheng, Dongquan Leng, Jingui Chen, Yamei Li, Degang Zhao, Tingting Wu, Qin Wei

原始摘要(英文原文)· Original abstract
Ratiometric photoelectrochemical (PEC) sensors often require complex designs involving dual-modified photoelectrode interfaces or specific excitation-wavelength materials, which limit their practical utility. This study proposed a highly universal strategy for ratiometric PEC sensors based on magnetic field regulation, allowing for the detection of two signals via a single interface. Specifically, the PEC activity of the magnetic secondary antibody label ZnFe 2 O 4 @TiO 2 could be modulated by an external magnetic field, which achieved dual-signal output and ratiometric detection. By eliminating dual-interface modifications, signal output inconsistencies were reduced, while the magnetic control mechanism made ratiometric detection no longer need material redesign. Furthermore, the sensing platform employed strain-engineered BiOBr nanosheets decorated with Bi 2 S 3 nanoparticles (StBiOBr-s) to optimize charge separation. Coupled with a K 4 [Fe(CN) 6 ]/ascorbic acid hybrid electrolyte, this design significantly accelerated interfacial electron transfer. Such synergistic material and electrolyte engineering provided a generalizable framework for high-performance PEC systems. The sensor system exhibited high sensitivity for neuron-specific enolase with a 30 fg/mL limit of detection, demonstrating both the practical utility for biomarker analysis and the broader potential of this approach for PEC sensing applications.
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Breaking the Dual-Interface Limitation: A Magnetically Controlled Ratiometric Photoelectrochemical Sensor Using Lattice-Strained BiOBr and a Ferrocyanide–Ascorbic Acid Hybrid Electrolyte — 科研速览 Science Skim