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采用铂修饰的分级氧化锌结构的低工作温度且响应显著的甲醇传感器。

Low-operating temperature and remarkably responsive methanol sensors using Pt-decorated hierarchical ZnO structure.

作者信息

Vuong Nguyen Minh, Duy Do Dai, Hieu Hoang Nhat, Nguyen Van Nghia, Truong Nguyen Ngoc Khoa, Van Bui Hao, Van Hieu Nguyen

机构信息

Faculty of Natural Sciences, Quy Nhon University, 170 An Duong Vuong, Quy Nhon, Binh Dinh 590000, Vietnam.

Faculty of Materials Science and Engineering, Phenikaa University, Yen Nghia Ward, Ha Dong District, Hanoi 12116, Vietnam.

出版信息

Nanotechnology. 2021 Nov 15;33(6). doi: 10.1088/1361-6528/ac3029.

Abstract

Highly responsive methanol sensors working at low temperatures are developed using hierarchical ZnO nanorods decorated by Pt nanoparticles. The sensing materials are fabricated following a 3-step process: electrospinning of ZnO nanofibers, hydrothermal growth of hierarchical ZnO nanorods on the nanofibers and UV-assisted deposition of Pt nanoparticles. The morphology, structure and properties of the materials are examined by field-effect scanning electron microscopy, transmission electron microscope, x-ray diffraction, x-ray photoelectron spectroscopy, UV-Vis absorption spectroscopy, and electrical measurements. The methanol sensing performance is investigated at different working temperatures in the range of 110 °C-260 °C. It is observed that the surface modification of the ZnO hierarchical nanorods by Pt nanoparticles results in a remarkable enhancement of the sensing response toward methanol, which can reach approximately 19 500 times higher than that of the unmodified ZnO nanorods-based sensor. In addition, this modification enables lower working temperatures with an optimum range of 140 °C-200 °C. Based on the achieved results, a methanol sensing mechanism of the Pt/ZnO structure is proposed.

摘要

利用由铂纳米颗粒修饰的分级氧化锌纳米棒研制出了在低温下具有高响应性的甲醇传感器。传感材料通过三步工艺制备:静电纺丝制备氧化锌纳米纤维,在纳米纤维上进行水热生长制备分级氧化锌纳米棒,以及紫外辅助沉积铂纳米颗粒。通过场效应扫描电子显微镜、透射电子显微镜、X射线衍射、X射线光电子能谱、紫外可见吸收光谱和电学测量来研究材料的形貌、结构和性能。在110℃至260℃范围内的不同工作温度下研究甲醇传感性能。观察到铂纳米颗粒对氧化锌分级纳米棒的表面修饰导致对甲醇的传感响应显著增强,这比未修饰的基于氧化锌纳米棒的传感器的响应高出约19500倍。此外,这种修饰使得工作温度更低,最佳范围为140℃至200℃。基于所取得的结果,提出了铂/氧化锌结构的甲醇传感机制。

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