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Updated: Jun 25, 2026

Synthesis and Operation of Fluorescent-core Microcavities for Refractometric Sensing
Published on: March 13, 2013
MIL-68(In)-derived CdIn2S4@In2S3 hollow microtubes for a sensitive molecularly imprinted photoelectrochemical CEA
Yang Zang1, Ruhua Wei1, Yang Feng1
1School of Chemistry and Chemical Engineering, Yangzhou University, Yangzhou, Jiangsu, 225002, P. R. China. zangyang@yzu.edu.cn.
Abstract:
Herein, an antibody-free photoelectrochemical sensing platform was constructed for a sensitive carcinoembryonic antigen (CEA) assay by coupling CdIn2S4@In2S3 hollow microtubes (HMTs) and a polydopamine-mediated molecularly imprinted polymer (MIP). The CdIn2S4@In2S3 HMTs, synthesized by a Cd2+-exchange reaction on an MIL-68(In)-derived In2S3 surface with a large specific surface area, could promote the separation of photogenerated charge carriers by shortening the charge-transfer distance and enhancing light absorption, resulting in a stable photocurrent. Furthermore, the polydopamine-dependent MIP, electrodeposited on the surface of a CdIn2S4@In2S3 HMTs-modified ITO electrode, could elute the template molecules to effectively recognize CEA without complex and expensive antibody-antigen assembly processes. In the presence of the target, CEA, the imprinted cavities could be re-embedded for inhibiting the diffusion of the electron donor via a typical steric-hindrance effect. Under optimized conditions, the developed sensor exhibited a wide linear range of 1 pg mL-1-500 ng mL-1, a low detection limit of 0.52 pg mL-1, high selectivity and good stability. This sensor was also applied to the CEA analysis of real human serum, providing a feasible strategy for the selective detection of other biomarkers.

