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基于 CsPbBr@ZnO 纳米晶体的机器学习辅助传感器用于识别混合环境中的甲醇。

Machine Learning-Assisted Sensor Based on CsPbBr@ZnO Nanocrystals for Identifying Methanol in Mixed Environments.

机构信息

Jiangsu Engineering Research Center for Dust Control and Occupational Protection, China University of Mining and Technology, Xuzhou 221116, Jiangsu, China.

School of Safety Engineering, China University of Mining and Technology, Xuzhou 221116, Jiangsu, China.

出版信息

ACS Sens. 2023 Mar 24;8(3):1252-1260. doi: 10.1021/acssensors.2c02656. Epub 2023 Mar 10.

DOI:10.1021/acssensors.2c02656
PMID:36897934
Abstract

Methanol is a respiratory biomarker for pulmonary diseases, including COVID-19, and is a common chemical that may harm people if they are accidentally exposed to it. It is significant to effectively identify methanol in complex environments, yet few sensors can do so. In this work, the strategy of coating perovskites with metal oxides is proposed to synthesize core-shell CsPbBr@ZnO nanocrystals. The CsPbBr@ZnO sensor displays a response/recovery time of 3.27/3.11 s to 10 ppm methanol at room temperature, with a detection limit of 1 ppm. Using machine learning algorithms, the sensor can effectively identify methanol from an unknown gas mixture with 94% accuracy. Meanwhile, density functional theory is used to reveal the formation process of the core-shell structure and the target gas identification mechanism. The strong adsorption between CsPbBr and the ligand zinc acetylacetonate lays the foundation for the formation of the core-shell structure. The crystal structure, density of states, and band structure were influenced by different gases, which results in different response/recovery behaviors and makes it possible to identify methanol from mixed environments. Furthermore, due to the formation of type II band alignment, the gas response performance of the sensor is further improved under UV light irradiation.

摘要

甲醇是一种呼吸生物标志物,可用于检测包括 COVID-19 在内的多种肺部疾病,同时也是一种常见的化学物质,如果人们意外接触,可能会对人体造成伤害。因此,有效识别复杂环境中的甲醇具有重要意义,但目前很少有传感器能够实现这一目标。在这项工作中,提出了用金属氧化物包覆钙钛矿的策略,以合成核壳型 CsPbBr@ZnO 纳米晶体。室温下,该传感器对 10ppm 甲醇的响应/恢复时间为 3.27/3.11s,检测限低至 1ppm。利用机器学习算法,该传感器可以从未知的混合气体中有效识别甲醇,准确率达到 94%。同时,密度泛函理论被用来揭示核壳结构的形成过程和目标气体的识别机制。CsPbBr 与配体乙酰丙酮锌之间的强吸附作用为核壳结构的形成奠定了基础。不同气体对晶体结构、态密度和能带结构产生影响,从而导致不同的响应/恢复行为,使传感器能够从混合环境中识别甲醇。此外,由于形成了 II 型能带排列,传感器在紫外光照射下的气体响应性能得到进一步提高。

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