MoO3热解吸甲基膦酸二甲酯的研究

Q1 Materials Science
Ashley R. Head, Xin Tang, Zachary Hicks, Linjie Wang, H. Bleuel, Scott Holdren, Lena Trotochaud, Yi Yu, Line Kyhl, Osman Karslıoǧlu, K. Fears, J. Owrutsky, M. Zachariah, K. Bowen, H. Bluhm
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引用次数: 14

摘要

摘要有机膦酸酯被用作化学战剂、杀虫剂和缓蚀剂。迫切需要用于吸附、检测和分解这些化合物的新材料。为了促进材料和应用创新,需要更好地了解有机膦酸盐与表面之间的相互作用。为此,我们使用漫反射红外傅立叶变换光谱研究了甲基膦酸二甲酯(DMMP)在MoO3上的吸附几何结构,MoO3是一种用于化学战剂过滤装置的材料。我们进一步应用常压X射线光电子能谱和程序升温脱附来研究DMMP的吸附和脱附。当DMMP在MoO3上完全吸附时,解吸取决于覆盖率和分压。在超高压条件下的低覆盖率下,完整的吸附是可逆的。MoO3表面的PCHx和POx分解产物证明,分解发生在较高的覆盖率下。在DMMP的mTorr分压下加热会导致产物积聚。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thermal desorption of dimethyl methylphosphonate from MoO3
Abstract Organophosphonates are used as chemical warfare agents, pesticides, and corrosion inhibitors. New materials for the sorption, detection, and decomposition of these compounds are urgently needed. To facilitate materials and application innovation, a better understanding of the interactions between organophosphonates and surfaces is required. To this end, we have used diffuse reflectance infrared Fourier transform spectroscopy to investigate the adsorption geometry of dimethyl methylphosphonate (DMMP) on MoO3, a material used in chemical warfare agent filtration devices. We further applied ambient pressure X-ray photoelectron spectroscopy and temperature programmed desorption to study the adsorption and desorption of DMMP. While DMMP adsorbs intact on MoO3, desorption depends on coverage and partial pressure. At low coverages under UHV conditions, the intact adsorption is reversible. Decomposition occurs with higher coverages, as evidenced by PCHx and POx decomposition products on the MoO3 surface. Heating under mTorr partial pressures of DMMP results in product accumulation.
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来源期刊
Catalysis Structure & Reactivity
Catalysis Structure & Reactivity CHEMISTRY, PHYSICAL-
CiteScore
4.80
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