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Updated: Sep 13, 2025

Author Spotlight: Development and Application of SERS Flexible Substrates Using Synthesized AgNPs
Published on: November 17, 2023
Substrate Flexibility and Metal Deposition Method Effects on Piezoelectric-Enhanced SERS in Metal-ZnO Nanorod
Nguyen Thi Quynh Nhu1,2, Le Tran Thanh Thi1,2, Le Vu Tuan Hung2
1Department of Applied Materials and Optoelectronic Engineering, National Chi Nan University, Nantou 54561, Taiwan.
Abstract:
This study investigates the effects of substrate flexibility and metal deposition methods on piezoelectric-enhanced Surface-Enhanced Raman Scattering (SERS) in metal-deposited ZnO nanorod (NR) nanocomposites (NCPs). ZnO NRs were grown on both rigid (ITO-glass) and flexible (ITO-PET) substrates, followed by gold (Au) deposition by pulsed-laser-induced photolysis (PLIP) or silver (Ag) deposition by thermal evaporation. Structural analysis revealed that ZnO NRs on flexible substrates exhibited smaller diameters (60-80 nm vs. 80-100 nm on glass), a higher density, and diverse orientations that enhanced piezoelectric responsiveness. Optical characterization showed distinct localized surface plasmon resonance (LSPR) peaks at 420 nm for Ag and 525 nm for Au systems. SERS measurements demonstrated that Ag-ZnO NCPs achieved superior detection limits (10-9 M R6G) with enhancement factors of 108-109, while Au-ZnO NCPs reached 10-8 M detection limits. Mechanical bending of flexible substrates induced dramatic signal enhancement (50-100-fold for Au-ZnO/PET and 2-3-fold for Ag-ZnO/PET), directly confirming piezoelectric enhancement mechanisms. This work establishes quantitative structure-property relationships in piezoelectric-enhanced SERS and provides design principles for high-performance flexible sensors.
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