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Updated: Aug 28, 2026

Single-Molecule Surface-Enhanced Raman Scattering Measurements Enabled by Plasmonic DNA Origami Nanoantennas
Published on: July 21, 2023
Synergistic enhancement via surface plasmon resonance and Schottky junctions for high-performance
Shangjun Li1, Jingyuan Wang2, Xin Liu1
1School of Chemistry and Chemical Engineering, University of Jinan, Jinan, 250022, China.
Abstract:
Photoelectrochemical (PEC) sensors exhibit significant promise for early disease diagnosis and trace-level biomarkers detection, owing to their exceptional sensitivity, strong anti-interference capacity. Nevertheless, the relatively low photoelectric conversion efficiency remains a limiting factor for their detection performance. In this paper, a high-performance PEC sensing strategy was proposed based on the engineered dual active centers of surface plasmon resonance and oxygen vacancy in the homologous Bi-Bi2O3 Schottky heterojunction structure. With this configuration, the photocurrent response was significantly enhanced by interface band structure regulation. To achieve higher sensitivity in photocathode analysis, a duplex-specific nuclease-assisted cycle strategy was employed to stabilize the photocurrent signal, and AgInS2 quantum dots were used as electron traps to collect photogenerated electrons in Bi-Bi2O3, which resulted in the signal being further amplified. By precisely capturing significant variations in the photocurrent signals, highly sensitive detection of microRNA166a was achieved, with a low detection limit (5.6 pM) and a broad linear detection range (10 pM to1μM). This work established the basis for efficient signal modulation strategies in high-performance PEC sensors.
