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锌酞菁传感机制定量分析及其在化学战剂探测器中的潜在应用。

Zinc Phthalocyanine Sensing Mechanism Quantification for Potential Application in Chemical Warfare Agent Detectors.

机构信息

Institute of Physics-Center for Science and Education, Silesian University of Technology, S. Konarskiego Str. 22B, 44-100 Gliwice, Poland.

Faculty of Chemistry, Silesian University of Technology, M. Strzody 9, 44-100 Gliwice, Poland.

出版信息

Sensors (Basel). 2022 Dec 16;22(24):9947. doi: 10.3390/s22249947.

Abstract

Rapid and accurate detection of lethal volatile compounds is an emerging requirement to ensure the security of the current and future society. Since the threats are becoming more complex, the assurance of future sensing devices' performance can be obtained solely based on a thorough fundamental approach, by utilizing physics and chemistry together. In this work, we have applied thermal desorption spectroscopy (TDS) to study dimethyl methylophosphate (DMMP, sarin analogue) adsorption on zinc phthalocyanine (ZnPc), aiming to achieve the quantification of the sensing mechanism. Furthermore, we utilize a novel approach to TDS that involves quantum chemistry calculations for the determination of desorption activation energies. As a result, we have provided a comprehensive description of DMMP desorption processes from ZnPc, which is the basis for successful future applications of sarin ZnPc-based sensors. Finally, we have verified the sensing capability of the studied material at room temperature using impedance spectroscopy and took the final steps towards demonstrating ZnPc as a promising sarin sensor candidate.

摘要

快速准确地检测致命挥发性化合物是确保当前和未来社会安全的新兴需求。由于威胁变得更加复杂,未来感测设备性能的保证只能基于彻底的基础方法,同时利用物理和化学。在这项工作中,我们应用热解吸光谱(TDS)来研究二甲甲基膦酸酯(DMMP,沙林类似物)在锌酞菁(ZnPc)上的吸附,旨在实现传感机制的定量。此外,我们利用一种新的 TDS 方法,涉及量子化学计算来确定解吸活化能。因此,我们提供了对 ZnPc 上 DMMP 解吸过程的全面描述,这是成功应用沙林基于 ZnPc 的传感器的基础。最后,我们使用阻抗谱验证了所研究材料在室温下的传感能力,并朝着证明 ZnPc 作为有前途的沙林传感器候选物迈出了最后一步。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fa5b/9784690/fc33d4613f82/sensors-22-09947-g006.jpg

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