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Simulation of the decomposition pathways and products of Perfluoronitrile C4F7N (3M:Novec 4710

  • Mengyuan Xu
  • , Jing Yan
  • , Zhiyuan Liu
  • , Yingsan Geng
  • , Zhenxing Wang
  • Xi'an Jiaotong University

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

16 Scopus citations

Abstract

The Objective of this paper is to explore the possible decomposition pathways and products of Perfluoronitrile C4F7N by density functional theory (DFT). First, the molecular structure, vibrational frequency and energy information of C4F7N and other major molecules are calculated by Materials Studio software. These results of some species(CF3, CF2, CF, C2F4, C2F5 and so on) are in a good agreement with previous work. Then, the standard molar enthalpy of reaction(ΔH298K) and energy barrier(ΔE298K) of chemical reaction is calculated and the transition state is carried out. Last, comparing the difficulty of various possible decomposition reactions. The favorable decomposition pathways of C4F7N are obtained: (1) C-C bond ruptures in the decomposition C4F7N producing Ia(CF3-CF-CN), ΔH298K=68.2kcal/mol, (2) Internal F atom transfers in the decomposition Ia producing IIa(CF2-CF2-CN) with transition state TS2, Δ E298K =42.3kcal/mol, (3) C-C bond ruptures in the decomposition IIa producing CF2-C≡N, Δ H298K=39.5kcal/mol.

Original languageEnglish
Title of host publicationICEPE-ST 2017 - 4th International Conference on Electric Power Equipment- Switching Technology
PublisherInstitute of Electrical and Electronics Engineers Inc.
Pages310-313
Number of pages4
ISBN (Electronic)9781538616512
DOIs
StatePublished - 12 Dec 2017
Event4th International Conference on Electric Power Equipment- Switching Technology, ICEPE-ST 2017 - Xi'an, China
Duration: 22 Oct 201725 Oct 2017

Publication series

NameICEPE-ST 2017 - 4th International Conference on Electric Power Equipment- Switching Technology
Volume2017-December

Conference

Conference4th International Conference on Electric Power Equipment- Switching Technology, ICEPE-ST 2017
Country/TerritoryChina
CityXi'an
Period22/10/1725/10/17

Keywords

  • Perfluoronitrile CFN
  • decomposition pathways
  • density functional theory
  • energy barrier

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