Huan Wang, Cuicui Du, Ziqian Wen, Xiaohua ZHANG, JinHua Chen
Sensitive detection and enantioselective discrimination of chiral molecules remain significant challenges in the field of sensing. Herein, we present a polarity-switching photoelectrochemical (PEC) sensing platform based on the in situ polymerization of vinyl-functionalized perovskite for highly sensitive enantioselective detection of l -/ d -cysteine ( l -/ d -Cys). Vinyl-functionalized FAPbI 3 (Vl-FAPbI 3 ) perovskite was synthesized by replacing conventional oleic acid and oleamide ligands with polymerizable methacrylate monomers, introducing vinyl groups for polymerizable functionality. During sensing, enantioselective binding of 2-bromoisobutyryl bromide-modified β-cyclodextrin (Br-CD) to surface-immobilized l -/ d -Cys initiated atom transfer radical polymerization (ATRP) of Vl-FAPbI 3 to different extents, producing enantiomer-specific interfaces (Au-CdS/ l -Cys/Br-CD/pVl-FAPbI 3 vs Au-CdS/ d -Cys/Br-CD/pVl-FAPbI 3 ). The polymerization simultaneously enhanced the perovskite stability and amplified the PEC output, ultimately inducing enantiomer-dependent polarity-switching behaviors. The platform exhibited wide linear ranges for l -Cys and d -Cys (10 –2 –10 5 nM) and low detection limits of 3.8 pM and 5.7 pM, respectively. Notably, within the concentration range of 60–200 pM, l -Cys and d -Cys produced opposite photocurrent polarities, thereby enabling intuitive discrimination of molecular chirality. The polarity-switching behavior further offered a straightforward indicator for distinguishing pure samples from mixed ones. This work suggested a unique and generalizable polarity-switching PEC sensing strategy that couples polymerization-driven perovskite stabilization with signal amplification, converting subtle enantiomeric differences into intuitively distinguishable PEC outputs for highly sensitive enantioselective analysis.