Single-Atom Au-Functionalized Mesoporous SnO<sub>2</sub> Nanospheres for Ultrasensitive Detection of <i>Listeria monocytogenes</i> Biomarker at Low Temperatures.

Feng, Bingxi; Wang, Zizheng; Feng, Youyou; Li, Ping; Zhu, Yongheng; Deng, Yonghui; Wu, Limin; Yue, Qin et al. · ACS Nano · 2024

basic_science · Level V

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Abstract

Semiconductor metal oxide gas sensors have been proven to be capable of detecting <i>Listeria monocytogenes</i>, one kind of foodborne bacteria, through monitoring the characteristic gaseous metabolic product 3-hydroxy-2-butanone. However, the detection still faces challenges because the sensors need to work at high temperatures and output limited gas sensing performance. The present study focuses on the design of single-atom Au-functionalized mesoporous SnO<sub>2</sub> nanospheres for the sensitive detection of ppb-level 3-hydroxy-2-butanone at low temperatures (50 °C). The fabricated sensors exhibit high sensitivity (291.5 ppm<sup>-1</sup>), excellent selectivity, short response time (10 s), and ultralow detection limit (10 ppb). The gas sensors exhibit exceptional efficacy in distinguishing <i>L. monocytogenes</i> from other bacterial strains (e.g., <i>Escherichia coli</i>). Additionally, wireless detection of 3-hydroxy-2-butanone vapor is successfully achieved through microelectromechanical systems sensors, enabling real-time monitoring of the biomarker 3-hydroxy-2-butanone. The superior sensing performance is ascribed to the mesoporous framework with accessible active Au-O-Sn sites in the uniform sensing layer consisting of single-atom Au-modified mesoporous SnO<sub>2</sub> nanospheres, and such a feature facilitates the gas diffusion, adsorption, and catalytic conversion of 3-hydroxy-2-butanone molecules in the sensing layer, resulting in excellent sensing signal output at relatively low temperature that is favorable for developing low-energy-consumption gas sensors.

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