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基于纳米尺度双金属 AuPt 功能化金属氧化物的化学电阻传感器:对臭氧和丙酮的 ppb 级和选择性检测。

Nanoscale Bimetallic AuPt-Functionalized Metal Oxide Chemiresistors: Ppb-Level and Selective Detection for Ozone and Acetone.

机构信息

State Key Laboratory of Integrated Optoelectronics, College of Electronic Science and Engineering, Jilin University, Changchun 130012, P. R. China.

出版信息

ACS Sens. 2022 Aug 26;7(8):2178-2187. doi: 10.1021/acssensors.2c00214. Epub 2022 Jul 28.

Abstract

As the most widely used gas sensors, metal oxide semiconductor (MOS)-based chemiresistors have been facing great challenges in achieving ppb-level and selective detection of the target gas. The rational design and employment of bimetallic nanocatalysts (NCs) are expected to address this issue. In this work, the well-shaped and monodispersed AuPt NCs (diameter ≈ 9 nm) were functionalized on one-dimensional (1D) InO nanofibers (NFs) to construct efficient gas sensors. The sensor demonstrated dual-selective and ppb-level detection for ozone (O) and acetone (CHO) at different optimal working temperatures. For the possible application exploitation, a circuit was designed to monitor O concentration and provide warnings when the concentration safety limit (50 ppb) was exceeded. Moreover, simulated exhaled breath measurements were also carried out to diagnose diabetes through CHO concentration. The selective detection for O and CHO was further analyzed by principal component analysis (PCA). The drastically enhanced sensing performances were attributed to the synergistic catalytic effect of AuPt NCs. Both the "spillover effect" and the Schottky barrier at the interfaces of AuPt NCs and InO NFs promoted the sensing processes of O and CHO.

摘要

作为应用最广泛的气体传感器,基于金属氧化物半导体(MOS)的化学电阻式传感器在实现对目标气体的 ppb 级和选择性检测方面面临着巨大的挑战。合理设计和使用双金属纳米催化剂(NCs)有望解决这一问题。在这项工作中,将具有良好形状和单分散性的 AuPt NCs(直径≈9nm)功能化到一维(1D)InO 纳米纤维(NFs)上,以构建高效气体传感器。该传感器在不同的最佳工作温度下对臭氧(O)和丙酮(CHO)表现出双重选择性和 ppb 级检测。为了可能的应用开发,设计了一个电路来监测 O 浓度,并在超过浓度安全限(50ppb)时发出警报。此外,还通过模拟呼出的呼吸测量来通过 CHO 浓度诊断糖尿病。通过主成分分析(PCA)进一步分析了对 O 和 CHO 的选择性检测。传感性能的显著增强归因于 AuPt NCs 的协同催化作用。AuPt NCs 和 InO NFs 界面处的“溢出效应”和肖特基势垒都促进了 O 和 CHO 的传感过程。

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