Design of high-active SERS in 2D Au/TiO2 thin film for quantitative and photodegraded analysis

IF 2.2 4区 化学 Q2 Engineering
Ton Nu Quynh Trang, Nguyen Tran Gia Bao, Thai Duong, Vu Thi Hanh Thu
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Abstract

Surface-enhanced Raman scattering (SERS) is a highly sensitive and non-destructive analytical technique that has attracted considerable interest in the scientific community. However, the practical application of SERS substrates has been hindered by the limited presence of active hotspots. In this study, we present an approach utilizing a TiO2 thin film decorated with Au nanoparticles (NPs) as a SERS platform. The Au/TiO2 hybrid thin film provides the sensor with exceptional sensitivity and remarkable photocatalytic properties for the photodecomposition of target molecules. Consequently, the optimized Au/TiO2 substrate exhibits a detection limit of 10–10 M for crystal violet (CV) molecules along with a significant enhancement factor of 1.94 × 108 and reliable repeatability. Additionally, it demonstrates a retention rate of 90% after three photodegradation cycles, highlighting its impressive reusability. Over a period of 45 days, the SERS intensity shows only a slight decrease of approximately 10%, underscoring its robust stability. The superior performance of our hybrid sample can be attributed to two primary benefits: the plasmonic effect of the Au NPs, which significantly enhances SERS sensitivity, and the charge-transfer (CT) effect, which enables facilitating efficient self-cleaning through the photocatalytic degradation of the TiO2 thin film under ultraviolet light exposure. This study not only offers insights into the synergistic effects of the electromagnetic enhancement and CT for recyclable SERS, but also opens up new avenues for studying photocatalysis involving dye molecules and monitoring catalytic processes.

Abstract Image

在二维金/二氧化钛薄膜中设计高活性 SERS,用于定量和光降解分析
表面增强拉曼散射(SERS)是一种高灵敏度、非破坏性的分析技术,在科学界引起了极大的兴趣。然而,SERS 基底的实际应用一直受限于活性热点的存在。在本研究中,我们提出了一种利用金纳米粒子(NPs)装饰的二氧化钛薄膜作为 SERS 平台的方法。金/二氧化钛混合薄膜为传感器提供了优异的灵敏度和显著的光催化特性,可用于光分解目标分子。因此,优化后的金/二氧化钛基底对水晶紫(CV)分子的检测限为 10-10 M,同时具有 1.94 × 108 的显著增强因子和可靠的重复性。此外,经过三个光降解周期后,它的保留率达到 90%,突出了其令人印象深刻的可重复使用性。在 45 天的时间里,SERS 强度仅略微下降了约 10%,这突出表明了其强大的稳定性。我们的混合样品之所以性能优越,主要归功于两个方面:金纳米粒子的等离子效应和电荷转移(CT)效应。前者能显著提高 SERS 的灵敏度,后者则能在紫外线照射下通过 TiO2 薄膜的光催化降解实现高效自清洁。这项研究不仅有助于深入了解电磁增强和电荷转移对可回收 SERS 的协同作用,还为研究染料分子光催化和监测催化过程开辟了新途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Chemical Papers
Chemical Papers Chemical Engineering-General Chemical Engineering
CiteScore
3.30
自引率
4.50%
发文量
590
期刊介绍: Chemical Papers is a peer-reviewed, international journal devoted to basic and applied chemical research. It has a broad scope covering the chemical sciences, but favors interdisciplinary research and studies that bring chemistry together with other disciplines.
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