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用于氢气传感的石墨烯/氧化锌纳米异质结构的制备

Fabrication of Graphene/Zinc Oxide Nano-Heterostructure for Hydrogen Sensing.

作者信息

Lu Yang-Ming, Tseng Chi-Feng, Lan Bing-Yi, Hsieh Chia-Fen

机构信息

Department of Electrical Engineering, National University of Tainan, Tainan 7005, Taiwan.

出版信息

Materials (Basel). 2021 Nov 17;14(22):6943. doi: 10.3390/ma14226943.

Abstract

In this study, hydrogen (H) and methane (CH) were used as reactive gases, and chemical vapor deposition (CVD) was used to grow single-layer graphene on a copper foil substrate. The single-layer graphene obtained was transferred to a single-crystal silicon substrate by PMMA transfer technology for the subsequent growth of nano zinc oxide. The characteristics of CVD-deposited graphene were analyzed by a Raman spectrometer, an optical microscope, a four-point probe, and an ultraviolet/visible spectrometer. The sol-gel method was applied to prepare the zinc oxide seed layer film with the spin-coating method, with methanol, zinc acetate, and sodium hydroxide as the precursors for growing ZnO nanostructures. On top of the ZnO seed layer, a one-dimensional zinc oxide nanostructure was grown by a hydrothermal method at 95 °C, using a zinc nitrate and hexamethylenetetramine mixture solution. The characteristics of the nano zinc oxide were analyzed by scanning electron microscope(SEM),x-ray diffractometer(XRD), and Raman spectrometer. The obtained graphene/zinc oxide nano-heterostructure sensor has a sensitivity of 1.06 at a sensing temperature of 205 °C and a concentration of hydrogen as low as 5 ppm, with excellent sensing repeatability. The main reason for this is that the zinc oxide nanostructure has a large specific surface area, and many oxygen vacancy defects exist on its surface. In addition, the P-N heterojunction formed between the n-type zinc oxide and the p-type graphene also contributes to hydrogen sensing.

摘要

在本研究中,氢气(H)和甲烷(CH)被用作反应气体,采用化学气相沉积(CVD)法在铜箔衬底上生长单层石墨烯。通过PMMA转移技术将得到的单层石墨烯转移到单晶硅衬底上,用于后续纳米氧化锌的生长。利用拉曼光谱仪、光学显微镜、四点探针和紫外/可见光谱仪对CVD沉积的石墨烯的特性进行了分析。采用溶胶-凝胶法并结合旋涂法制备氧化锌籽晶层薄膜,使用甲醇、醋酸锌和氢氧化钠作为生长ZnO纳米结构的前驱体。在ZnO籽晶层之上,采用水热法在95℃下,使用硝酸锌和六亚甲基四胺混合溶液生长一维氧化锌纳米结构。利用扫描电子显微镜(SEM)、X射线衍射仪(XRD)和拉曼光谱仪对纳米氧化锌的特性进行了分析。所制备的石墨烯/氧化锌纳米异质结构传感器在205℃的传感温度下,对低至5 ppm的氢气浓度具有1.06的灵敏度,且具有优异的传感重复性。主要原因在于氧化锌纳米结构具有较大的比表面积,其表面存在许多氧空位缺陷。此外,n型氧化锌与p型石墨烯之间形成的P-N异质结也有助于氢气传感。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/544b/8623918/682dadb90863/materials-14-06943-g001.jpg

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