MD-DFT Calculations on Dissociative Absorption Configurations of FOX-7 on (001)- and (101)-Oriented Crystalline Parylene Protective Membranes

Author:

Luo Weihui1,Bian Liang1234,Dong Faqin1,Nie Jianan1,Yang Jingjie13

Affiliation:

1. Key Laboratory of Solid Waste Treatment and Resource Recycle, Ministry of Education, South West University of Science and Technology, Mianyang 621010, China

2. Institute of Gem and Material Technology, Hebei GEO University, Shijiazhuang 050000, China

3. State Key Laboratory of Environment-friendly Energy Materials, South West University of Science and Technology, Mianyang 621010, China

4. Tianfu Institute of Research and Innovation, Southwest University of Science and Technology, Chengdu 610299, China

Abstract

Crystalline poly-para-xylylene (parylene) has the potential for use as a protective membrane to delay the nucleation of explosives by separating the explosives and their decomposition products to decrease the explosive sensitivity. Here, molecular dynamics (MD) and density functional theory (DFT) techniques were used to calculate the dissociative adsorption configurations of 1,1-diamino-2,2-dinitroethylene (FOX-7) on (001)- and (101)-oriented crystalline parylene membranes. Based on the results of the calculations, this work demonstrates that the -NO2–π electrostatic interactions are the dominant passivation mechanism of FOX-7 on these oriented surfaces. FOX-7 can dissociatively adsorb on oriented parylene membranes due to the interactions between the LUMO of the toluene (or methyl) groups on parylene and the HOMO of the -NO2 (or -NH2) groups on FOX-7. The formation of a new intermolecular H-bond with the ONO group leads to FOX-7 decomposition via intramolecular C-NO2 bond fission and nitro-to-nitrite rearrangement. The most likely adsorption configurations are described in terms of the decomposition products, surface active groups of parylene, binding behaviors, and N charge transfer. Importantly, the (001)-oriented parylene AF8 membrane is promising for use as a protective membrane to passivate the high-energy -NO2 bonds during the dissociative adsorption of FOX-7. This study offers a new perspective on the development of protective membranes for explosives.

Funder

973 Project

One Thousand Talents Scheme of Sichuan Province

National Natural Science Foundation of China

Hebei Outstanding Young Scholars, Science and Technology Program of Hebei Province

Longshan fund of the Southwest University of Science and Technology

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

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