| Literature DB >> 31564103 |
Lei Guo1, Hui Yin1, Minglan Xu1, Zhaoting Zheng1, Xiaohu Fang1, Ran Chong1, Yuanyuan Zhou1, Lingqiu Xu1, Qin Xu2, Jing Li1, Hongbo Li1.
Abstract
Trace concentration of formaldehyde can damage human health and environment. Consequently, it is of great significance to develop an ultrasensitive sensor for its determination. Herein, an ingenious and efficient photoelectrochemical sensor for formaldehyde was constructed by amorphous TiO2 hollow spheres incorporated with Ag+ ions, which were brought about by silica template etching and then the exchange of Ag+/Na+ ions. The amorphous TiO2 acted the dual role of Ag+ ion probe carriers and photoelectric materials. Upon exposure to the increased concentration of formaldehyde, the Ag nanoparticles were produced in situ, and photocurrent amplification was then achieved in a proportional manner. It is attributed to the injection of hot electrons from plasmonic Ag nanoparticles into the conduction band of amorphous titanium dioxide and therefore enhanced the photocurrent. The linear relationship between 1 and 400 pmol L-1 resulted from the enhanced photocurrent and increased concentration of formaldehyde, and the detection limit was 0.4 pmol L-1. Benefiting from an in situ and unique sensitization strategy, this photoelectrochemical sensor exhibited many advantages such as sensitivity, selectivity, cost-effectiveness, convenience of fabrication, low power consumption, and stability.Entities:
Keywords: formaldehyde; photoelectrochemical; plasmon; sensing; silver nanoparticles
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Year: 2019 PMID: 31564103 DOI: 10.1021/acssensors.9b01204
Source DB: PubMed Journal: ACS Sens ISSN: 2379-3694 Impact factor: 7.711