Effect of Different Dominant Phase on NO2-Sensing Properties of ZnO/SnO2 Composites

The influence of different dominant phases on the gas-sensing properties of metal oxide n-n heterojunctions remains unclear. In this work, two kinds of phase-inverted ZnO/SnO2 heterojunction composites (SZ and ZS series) are fabricated via a facile solid-state grinding method. Characterization results show that ZS-7 exhibits finer and more uniform grains with a specific surface area of 70.30 m2·g−1. SZ-7 has a high oxygen vacancy content of 26.28%, and its Sn 3d characteristic peaks shift entirely toward higher binding energies, which verifies electron redistribution at the n-n heterojunction interface. Under UV irradiation, room-temperature NO2 gas-sensing tests reveal that the ZS series exhibits overall superior performance to the SZ series. ZS-7 delivers a gas response of 46.49, with response/recovery times of 35 s/122 s and an ultralow detection limit of 74 ppb. Mechanism analysis indicates that the ZnO/SnO2 heterojunction facilitates the separation and migration of photogenerated carriers under UV irradiation. The phase-inverted structure further accelerates photogenerated carrier separation and optimizes charge transport, ultimately improving gas-sensing performance. This study provides a novel design strategy for developing high-performance room-temperature NO2 sensors.

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Publication Details

Journal
Micromachines
Published
2026-09-24
DOI
https://doi.org/10.3390/mi17101115
Primary Topic
Gas Sensing Nanomaterials and Sensors
Type
article
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article

Effect of Different Dominant Phase on NO2-Sensing Properties of ZnO/SnO2 Composites

Zhenyue Tu, Hongxia Bian, Jiankang Huang, Jipeng Zhao et al.
Micromachines
Gas Sensing Nanomaterials and Sensors
article

Effect of Different Dominant Phase on NO2-Sensing Properties of ZnO/SnO2 Composites

Zhenyue Tu, Hongxia Bian, Jiankang Huang, Jipeng Zhao, Zhigang Tao
article en

Abstract

The influence of different dominant phases on the gas-sensing properties of metal oxide n-n heterojunctions remains unclear. In this work, two kinds of phase-inverted ZnO/SnO2 heterojunction composites (SZ and ZS series) are fabricated via a facile solid-state grinding method. Characterization results show that ZS-7 exhibits finer and more uniform grains with a specific surface area of 70.30 m2·g−1. SZ-7 has a high oxygen vacancy content of 26.28%, and its Sn 3d characteristic peaks shift entirely toward higher binding energies, which verifies electron redistribution at the n-n heterojunction interface. Under UV irradiation, room-temperature NO2 gas-sensing tests reveal that the ZS series exhibits overall superior performance to the SZ series. ZS-7 delivers a gas response of 46.49, with response/recovery times of 35 s/122 s and an ultralow detection limit of 74 ppb. Mechanism analysis indicates that the ZnO/SnO2 heterojunction facilitates the separation and migration of photogenerated carriers under UV irradiation. The phase-inverted structure further accelerates photogenerated carrier separation and optimizes charge transport, ultimately improving gas-sensing performance. This study provides a novel design strategy for developing high-performance room-temperature NO2 sensors.

MicromachinesVol. 17(10)
Gansu Agricultural University (CN), Lanzhou University of Technology (CN)
Industry, innovation and infrastructure
Openalex Percentile: Top 21%
Gas Sensing Nanomaterials and Sensors
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Effect of Different Dominant Phase on NO2-Sensing Properties of ZnO/SnO2 Composites — Zhenyue Tu, Hongxia Bian, et al. · Micromachines (2026) | TGRS Research Map | TGRS