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Updated: Sep 19, 2026

Fabrication and Characterization of Thickness Mode Piezoelectric Devices for Atomization and Acoustofluidics
Published on: August 5, 2020
Piezopotential-Driven Nitrogen Reduction for Sustainable Ammonia Synthesis via Metal-Piezoelectric Interfacial
Syuan-Tai Chang1, Hsun-Yen Lin2, Yu-Ching Chen3
1College of Semiconductor Research, National Tsing Hua University, 101, Section 2 Kuang Fu Road, Hsinchu, Taiwan.
Abstract:
Ambient ammonia synthesis remains highly challenging due to the inertness of N2 and inefficient charge separation and interfacial reaction kinetics in current piezocatalytic systems. Herein, we report a metal-piezoelectric strategy by engineering amorphous Ru-coated ZnO nanorods to enable highly efficient piezocatalytic nitrogen reduction. The introduction of an optimized amorphous Ru-coated surface induces strong interfacial charge redistribution and establishes a built-in electric field, which synergistically enhances piezoelectric polarization and carrier dynamics. As a result, the optimized ZnO-NRs/10Ru exhibits a dramatically prolonged carrier lifetime (18 ns, an approximately ninefold increase) and the strongest piezoresponse among all samples. Piezo-induced charge separation generates reductive •H species that may facilitate the hydrogenation of adsorbed nitrogen species, accompanied by •OH formation through hole-mediated water oxidation. Under purely mechanical stimulation, ZnO-NRs/10Ru achieves an ammonia yield of 2007.06 µmol gcat -1 L-1 h-1, nearly twice that of pristine ZnO, with excellent structural stability and isotope-confirmed nitrogen origin. Finite-element simulations further demonstrate that the Ru-coated surface optimizes internal piezopotential distribution while maintaining efficient charge transfer across the ZnO/Ru interface. This work provides a general strategy for metal-modified piezoelectric catalysts toward sustainable ammonia synthesis and energy conversion applications.
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