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使用掺杂有氧化铜纳米颗粒的原始石墨烯的高灵敏度氨气传感器。

High-sensitivity NH gas sensor using pristine graphene doped with CuO nanoparticles.

作者信息

Tsymbalenko Oleksandr, Lee Soyoung, Lee Yong-Min, Nam Yun-Sik, Kim Byoung Chan, Kim Jin Young, Lee Kang-Bong

机构信息

Climate and Environmental Research Institute, Korea Institute of Science and Technology, Hwarang-ro 14 gil 5, Seongbuk-gu, 02792, Seoul, Republic of Korea.

Division of Energy and Environment Technology, KIST School, University of Science and Technology, Seoul, 02792, Republic of Korea.

出版信息

Mikrochim Acta. 2023 Mar 15;190(4):134. doi: 10.1007/s00604-023-05717-y.

Abstract

A highly sensitive and selective NH gas sensor was developed based on single-layer pristine graphene doped with copper(II) oxide (CuO) nanoparticles of a specific size. High-quality single-layer graphene was grown using chemical vapor deposition. Approximately 15 nm-sized CuO colloidal nanoparticles were fabricated by a microwave-assisted thermal method using copper acetate as the precursor, and dimethylformamide as the reducing and stabilizing agent. Pristine graphene was doped with an aqueous suspension of CuO nanoparticles at a coating speed of 1500 rpm using a simple spin coater. CuO nanoparticle doping induces changes in the electronic properties of graphene; in particular, p-type doping significantly altered graphene resistivity in the presence of NH gas. Upon exposure of the pristine graphene surface to NH gas, NH reacted with O/ O/ O species on the graphene surface and released electrons into graphene. This caused a change in the concentration of charge carriers in the valence channel of graphene and an increase in graphene resistivity, facilitating real-time NH monitoring with quick response and rapid recovery at 25 ℃ and ~ 55% relative humidity. Our results indicated that graphene doped with ~ 15 nm-sized CuO nanoparticles can sense NH gas selectively with a resistivity response of ~ 83%. Moreover, the sensor exhibited good reusability, fast response (~ 19 s), and rapid recovery (~ 277 s) with a detection limit of 0.041 ppm and a relative standard deviation of 0.76%.

摘要

基于掺杂特定尺寸氧化铜(CuO)纳米颗粒的单层原始石墨烯,开发了一种高灵敏度和选择性的NH气体传感器。采用化学气相沉积法生长高质量的单层石墨烯。以醋酸铜为前驱体,二甲基甲酰胺为还原和稳定剂,通过微波辅助热法制备了尺寸约为15 nm的CuO胶体纳米颗粒。使用简单的旋涂机,以1500 rpm的涂布速度将CuO纳米颗粒的水悬浮液掺杂到原始石墨烯中。CuO纳米颗粒掺杂会引起石墨烯电子性质的变化;特别是,p型掺杂在存在NH气体的情况下显著改变了石墨烯的电阻率。当原始石墨烯表面暴露于NH气体时,NH与石墨烯表面的O/O/O物种反应并向石墨烯释放电子。这导致石墨烯价带通道中载流子浓度发生变化,石墨烯电阻率增加,便于在25℃和相对湿度约55%的条件下对NH进行实时监测,响应迅速且恢复快速。我们的结果表明,掺杂约15 nm尺寸CuO纳米颗粒的石墨烯能够选择性地检测NH气体,电阻率响应约为83%。此外,该传感器具有良好的可重复使用性、快速响应(约19秒)和快速恢复(约277秒),检测限为0.041 ppm,相对标准偏差为0.76%。

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