Vanadium‐Doped ZnO Nanorod Piezoelectric Nanogenerators for Self‐Powered NH 3 Gas Sensing With UV‐Modulated Response

ABSTRACT This work presents a high‐performance, self‐powered ammonia (NH 3 ) gas sensor based on vanadium‐doped ZnO (V:ZnO) nanorod arrays integrated into a piezoelectric nanogenerator (PENG). V:ZnO nanorods with doping concentrations from 0.25 to 1.00 mM were synthesized via a hydrothermal method. Structural, chemical, and optical characterizations indicate that vanadium incorporation modifies defect‐related states and surface oxygen species, thereby improving surface reactivity and piezotronic transduction. The optimized 0.75 mM V:ZnO PENG achieves a superior voltage response of 67.2% to 75 ppm NH 3 , nearly doubling the performance of pure ZnO (35.6%) under bias‐free operation. Under 254 nm UV illumination, the device exhibits a pronounced increase in baseline current, indicating UV‐induced carrier modulation rather than an independent UV‐sensing mode. Finite element analysis (FEA) further supports the role of gas‐induced surface charge variation in regulating the internal piezopotential distribution. This research provides a promising strategy for developing defect‐engineered, self‐powered NH 3 gas sensors based on piezoelectric semiconductor nanostructures.

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Publication Details

Journal
Advanced Materials Technologies
Published
2026-09-21
DOI
https://doi.org/10.1002/admt.71332
Primary Topic
Gas Sensing Nanomaterials and Sensors
Type
article
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Vanadium‐Doped ZnO Nanorod Piezoelectric Nanogenerators for Self‐Powered NH 3 Gas Sensing With UV‐Modulated Response

Ting-Sung Lu, Liang‐Wen Ji, Kuan-Yi Cheng, Kai-Lin Yang et al.
Advanced Materials Technologies
Gas Sensing Nanomaterials and Sensors
article

Vanadium‐Doped ZnO Nanorod Piezoelectric Nanogenerators for Self‐Powered NH 3 Gas Sensing With UV‐Modulated Response

Ting-Sung Lu, Liang‐Wen Ji, Kuan-Yi Cheng, Kai-Lin Yang, Yi-Hsiang Kao, Yi-Lun Lee, Bo-Ruei Huang
article en

Abstract

ABSTRACT This work presents a high‐performance, self‐powered ammonia (NH 3 ) gas sensor based on vanadium‐doped ZnO (V:ZnO) nanorod arrays integrated into a piezoelectric nanogenerator (PENG). V:ZnO nanorods with doping concentrations from 0.25 to 1.00 mM were synthesized via a hydrothermal method. Structural, chemical, and optical characterizations indicate that vanadium incorporation modifies defect‐related states and surface oxygen species, thereby improving surface reactivity and piezotronic transduction. The optimized 0.75 mM V:ZnO PENG achieves a superior voltage response of 67.2% to 75 ppm NH 3 , nearly doubling the performance of pure ZnO (35.6%) under bias‐free operation. Under 254 nm UV illumination, the device exhibits a pronounced increase in baseline current, indicating UV‐induced carrier modulation rather than an independent UV‐sensing mode. Finite element analysis (FEA) further supports the role of gas‐induced surface charge variation in regulating the internal piezopotential distribution. This research provides a promising strategy for developing defect‐engineered, self‐powered NH 3 gas sensors based on piezoelectric semiconductor nanostructures.

Advanced Materials Technologies
National Pingtung University of Science and Technology (TW), National Formosa University (TW)
Openalex Percentile: Top 20%
Gas Sensing Nanomaterials and Sensors
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Vanadium‐Doped ZnO Nanorod Piezoelectric Nanogenerators for Self‐Powered NH 3 Gas Sensing With UV‐Modulated Response — Ting-Sung Lu, Liang‐Wen Ji, et al. · Advanced Materials Technologies (2026) | TGRS Research Map | TGRS