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In situ SERS monitoring of photocatalytic organic decomposition using recyclable TiO2-coated Ag nanowire arrays

机译:使用可回收的TiO2包覆的Ag纳米线阵列原位SERS监测光催化有机分解

摘要

Recently, semiconductor and noble metal complex nanomaterials have attracted ever-increasing attention because of the realization of multiple functionalities in a single entity. In this study, Ag-TiO2 core-shell nanocomposites were synthesized by hydrolysis of butyl titanate on the surface of Ag nanowires. Due to efficient electron transfer at the Ag-TiO2 interface, the as-prepared nanocomposites exhibit much higher photocatalytic activity than bare TiO2 films, as demonstrated by the enhanced photodegradation rate of R6G and methyl blue molecules. In the meanwhile, such nanocomposites serve as a high-sensitivity surface-enhanced Raman scattering (SERS) substrate for in situ monitoring of the photocatalytic decomposition reaction, and the substrate is recyclable due to its self-cleaning function. Full-wave numerical calculations reveal that the improved photocatalysis and SERS efficiencies are attributed to the largely enhanced electromagnetic near-field in the nanocomposites. Our results point out that bifunctional semiconductor-metal hybrids hold great promise for simultaneously detecting and decomposing organic pollutants in the environment.
机译:近来,由于在单个实体中实现多种功能,半导体和贵金属络合物纳米材料引起了越来越多的关注。在这项研究中,Ag-TiO2核壳纳米复合材料是通过在Ag纳米线表面水解钛酸丁酯合成的。由于有效的电子在Ag-TiO2界面上的转移,所制备的纳米复合材料比裸露的TiO2薄膜具有更高的光催化活性,这可以通过R6G和甲基蓝分子的光降解速率提高来证明。同时,此类纳米复合材料用作高灵敏度表面增强拉曼散射(SERS)基材,用于原位监测光催化分解反应,并且由于其自清洁功能,该基材可回收利用。全波数值计算表明,改进的光催化和SERS效率归因于纳米复合材料中电磁近场的大大增强。我们的研究结果表明,双功能半导体-金属混合物在同时检测和分解环境中的有机污染物方面具有广阔的前景。

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