The effect of carbonyl defect on the electrode injection characteristics of polytetrafluoroethylene film capacitor

Polymer dielectric capacitor for high energy storage is a promising energy storage technology. However, in dielectric capacitor electrode injection process may occur at the metal plate/organic polymer interface under high applied electric field, and the injected carriers will lead to the distorted e...

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Main Authors: Wei Duan, Guangzhi Guo, Lu Pu, Jian Wu, Haofei Sun, Xuefeng Zhao, Junbo Deng
Format: Article
Language:English
Published: Elsevier 2022-07-01
Series:Energy Reports
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2352484722002360
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author Wei Duan
Guangzhi Guo
Lu Pu
Jian Wu
Haofei Sun
Xuefeng Zhao
Junbo Deng
author_facet Wei Duan
Guangzhi Guo
Lu Pu
Jian Wu
Haofei Sun
Xuefeng Zhao
Junbo Deng
author_sort Wei Duan
collection DOAJ
description Polymer dielectric capacitor for high energy storage is a promising energy storage technology. However, in dielectric capacitor electrode injection process may occur at the metal plate/organic polymer interface under high applied electric field, and the injected carriers will lead to the distorted electric field and the accumulation of space charge in dielectric material, which can seriously cause the breakdown of the capacitor. Furthermore, chemical defects in polymer dielectric may aggravate this effect of electrode injection. For this, based on the first principle simulation method, the effect of carbonyl defect on electrode injection properties at aluminum/polytetrafluoroethylene (PTFE) interface are studied to reveal the harm of chemical defect to dielectric capacitor insulation and to explain the potential physical mechanism. The results showed that the carbonyl defect can increase the vacuum level shift of interface and electron affinity of PTFE molecule, while decrease the ionization potential of PTFE molecule, which significantly reduce the interface charge injection barrier. Compared with the ideal interface, the electron injection barrier at the carbonyl defect interface decreased from 3.40eV to 2.29eV, and the hole injection barrier decreased from 7.39eV to 5.80eV. As a result, the injection current density of the interface with carbonyl defect is significantly higher under the same electric field.
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spelling doaj.art-55c795a0a031435a817d78eea7582a2f2022-12-22T04:02:15ZengElsevierEnergy Reports2352-48472022-07-018599606The effect of carbonyl defect on the electrode injection characteristics of polytetrafluoroethylene film capacitorWei Duan0Guangzhi Guo1Lu Pu2Jian Wu3Haofei Sun4Xuefeng Zhao5Junbo Deng6Electric Power Research Institute of State Grid Shaanxi Electric Power Company, Xi’an 710000, ChinaState Key Laboratory of Electrical Insulation and Power Equipment, Xi’an Jiaotong University, Xi’an 710049, ChinaElectric Power Research Institute of State Grid Shaanxi Electric Power Company, Xi’an 710000, ChinaPower Transmission & Transformation Company of State Grid Shaanxi Electric Power Company, Xi’an 710000, ChinaElectric Power Research Institute of State Grid Shaanxi Electric Power Company, Xi’an 710000, ChinaElectric Power Research Institute of State Grid Shaanxi Electric Power Company, Xi’an 710000, ChinaState Key Laboratory of Electrical Insulation and Power Equipment, Xi’an Jiaotong University, Xi’an 710049, China; Corresponding author.Polymer dielectric capacitor for high energy storage is a promising energy storage technology. However, in dielectric capacitor electrode injection process may occur at the metal plate/organic polymer interface under high applied electric field, and the injected carriers will lead to the distorted electric field and the accumulation of space charge in dielectric material, which can seriously cause the breakdown of the capacitor. Furthermore, chemical defects in polymer dielectric may aggravate this effect of electrode injection. For this, based on the first principle simulation method, the effect of carbonyl defect on electrode injection properties at aluminum/polytetrafluoroethylene (PTFE) interface are studied to reveal the harm of chemical defect to dielectric capacitor insulation and to explain the potential physical mechanism. The results showed that the carbonyl defect can increase the vacuum level shift of interface and electron affinity of PTFE molecule, while decrease the ionization potential of PTFE molecule, which significantly reduce the interface charge injection barrier. Compared with the ideal interface, the electron injection barrier at the carbonyl defect interface decreased from 3.40eV to 2.29eV, and the hole injection barrier decreased from 7.39eV to 5.80eV. As a result, the injection current density of the interface with carbonyl defect is significantly higher under the same electric field.http://www.sciencedirect.com/science/article/pii/S2352484722002360Polytetrafluoroethylene film capacitorCharge injection barrierCarbonyl defectFirst-principle
spellingShingle Wei Duan
Guangzhi Guo
Lu Pu
Jian Wu
Haofei Sun
Xuefeng Zhao
Junbo Deng
The effect of carbonyl defect on the electrode injection characteristics of polytetrafluoroethylene film capacitor
Energy Reports
Polytetrafluoroethylene film capacitor
Charge injection barrier
Carbonyl defect
First-principle
title The effect of carbonyl defect on the electrode injection characteristics of polytetrafluoroethylene film capacitor
title_full The effect of carbonyl defect on the electrode injection characteristics of polytetrafluoroethylene film capacitor
title_fullStr The effect of carbonyl defect on the electrode injection characteristics of polytetrafluoroethylene film capacitor
title_full_unstemmed The effect of carbonyl defect on the electrode injection characteristics of polytetrafluoroethylene film capacitor
title_short The effect of carbonyl defect on the electrode injection characteristics of polytetrafluoroethylene film capacitor
title_sort effect of carbonyl defect on the electrode injection characteristics of polytetrafluoroethylene film capacitor
topic Polytetrafluoroethylene film capacitor
Charge injection barrier
Carbonyl defect
First-principle
url http://www.sciencedirect.com/science/article/pii/S2352484722002360
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