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用于增强丙酮检测的反蛋白石大孔NiO-SnO异质结的硬模板合成

Hard-Template Synthesis of Inverse Opal Macroporous NiO-SnO Heterojunction for Enhanced Acetone Detection.

作者信息

Li Feihu, Yang Bowen, Li Jingkun, Long Yangyang, Zhang Zichang, Wang Zhipeng, Wang Jiabao, Chen Guangqiang, Zhang Ziqiang, Yang Ruiming, Wang Kan, Zou Weihua, Fang Fang, Zhang Yeguang, Wang Peng, Zhan Zili

机构信息

School of Chemical Engineering, Zhengzhou University, Zhengzhou, 450001, China.

School of Mechanical & Electrical Engineering, Xi'an Traffic Engineering Institute, Xi'an, 710300, China.

出版信息

ACS Sens. 2025 Sep 26;10(9):6971-6980. doi: 10.1021/acssensors.5c01979. Epub 2025 Sep 3.

Abstract

Chemiresistive gas sensors have emerged as a promising technology for gas detection, due to their real-time response, low costs, high sensitivity, excellent stability, and facile fabrication. However, the full realization of their potential is currently constrained by the scarcity of sensing materials capable of delivering high selectivity and ultrafast response. In this study, we prepared a three-dimensional inverse opal macroporous SnO doped with NiO (3DIO NiO-SnO). The macroporous structure of 3DIO NiO-SnO exhibits a larger specific surface area, which facilitates the diffusion and adsorption and desorption of acetone gas within the material. Furthermore, the formation of a p-n heterojunction substantially accelerates electron transport rates at the interfaces within the material. The 3DIO NiO-SnO sensor demonstrates a response value of 202 to 100 ppm of acetone, which is 12 times higher than that of the SnO sensor. Moreover, the 3DIO NiO-SnO sensor exhibits fast response kinetics to acetone. At the optimal operating temperature of 198.5 °C, the response time to acetone gas is only 3 s, along with excellent repeatability and long-term stability. This work offers novel insights into the design strategy for macroporous NiO-SnO nanomaterials, enabling high-performance quantitative detection in acetone gas sensors.

摘要

由于具有实时响应、低成本、高灵敏度、出色的稳定性和易于制造等优点,化学电阻式气体传感器已成为一种很有前景的气体检测技术。然而,目前能够实现高选择性和超快响应的传感材料的稀缺限制了其潜力的充分发挥。在本研究中,我们制备了一种掺杂NiO的三维反蛋白石大孔SnO(3DIO NiO-SnO)。3DIO NiO-SnO的大孔结构具有更大的比表面积,这有利于丙酮气体在材料内部的扩散以及吸附和解吸。此外,p-n异质结的形成大大加快了材料内部界面处的电子传输速率。3DIO NiO-SnO传感器对100 ppm丙酮的响应值为202,比SnO传感器高出12倍。此外,3DIO NiO-SnO传感器对丙酮表现出快速的响应动力学。在198.5°C的最佳工作温度下,对丙酮气体的响应时间仅为3秒,同时具有出色的重复性和长期稳定性。这项工作为大孔NiO-SnO纳米材料的设计策略提供了新的见解,能够在丙酮气体传感器中实现高性能的定量检测。

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