Space charge in dielectrics energy storage and transfer dynamics from atomistic to macroscopic scale

被引:52
|
作者
Blaise, G [1 ]
Sarjeant, WJ
机构
[1] Univ Paris Sud, Phys Solides Lab, Orsay, France
[2] SUNY Buffalo, High Power Elect Inst, Buffalo, NY 14260 USA
关键词
D O I
10.1109/94.729703
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The consequence of the coupling of a charged particle with a polarization field is the formation of a quasi-particle called the 'polaron'. The degree of 'localization' of such charge depends on the nature of this coupling. In this way, trapping at an atomic scale is described as resulting from the evolution of a coupling involving successively: the electronic polarization field, the infrared polarization field, and the quasi-static ionic polarization field. The internal energy stored in the surrounding medium polarized by the charge is high because the charge is so well localized. The maximum of this energy is obtained for the quasi-static polarization field; its magnitude is of the order of 5 to 10 eV per trapped charge. This work addresses the physics of aging and of the breakdown process on the basis of an unsustainable increase in local internal energy within the material, due to charge trapping - the polarization around a trapped charge increases the local energy; the relaxation of the material lattice then follows a rapid detrapping of charges from their sites, releasing the local excess site region energy into the material. Such a release executes transient virtual work on the material, producing macroscopic dielectric damage, and when critical, unstable conditions are achieved in the time domain, this is followed by electrical breakdown. This interpretation of electrical material breakdown is related to bulk breakdown as observed in thin film laminate structures (similar to mu m) and surface flashover as seen in large structures (similar to mm to cm).
引用
收藏
页码:779 / 808
页数:30
相关论文
共 50 条
  • [21] Advances in Polymer Dielectrics with High Energy Storage Performance by Designing Electric Charge Trap Structures
    Meng, Zhaotong
    Zhang, Tiandong
    Zhang, Changhai
    Shang, Yanan
    Lei, Qingquan
    Chi, Qingguo
    ADVANCED MATERIALS, 2023,
  • [22] DIRECT MEASUREMENT OF SPACE-CHARGE INJECTION FROM A NEEDLE ELECTRODE INTO DIELECTRICS
    HIBMA, T
    ZELLER, HR
    JOURNAL OF APPLIED PHYSICS, 1986, 59 (05) : 1614 - 1620
  • [23] Energy transfer in nonequilibrium space-charge-dominated beams
    Kishek, RA
    O'Shea, PG
    Reiser, M
    PHYSICAL REVIEW LETTERS, 2000, 85 (21) : 4514 - 4517
  • [24] Interfacial Charge Transfer and Zinc Ion Intercalation and Deintercalation Dynamics in Flexible Multicolor Electrochromic Energy Storage Devices
    Wang, Chunjian
    Zhang, Xinlei
    Liu, Sheng
    Zhang, Hongliang
    Wang, Qiang
    Zhang, Chengli
    Gao, Junhua
    Liang, Lingyan
    Cao, Hongtao
    ACS APPLIED ENERGY MATERIALS, 2022, 5 (01): : 88 - 97
  • [25] Diffusion in energy materials: Governing dynamics from atomistic modelling
    Parfitt, D.
    Kordatos, A.
    Filippatos, P. P.
    Chroneos, A.
    APPLIED PHYSICS REVIEWS, 2017, 4 (03):
  • [26] Charge transfer induced energy storage in CaZnOS: Mn - insight from experimental and computational spectroscopy
    Joos, Jonas J.
    Lejaeghere, Kurt
    Korthout, Katleen
    Feng, Ang
    Poelman, Dirk
    Smet, Philippe F.
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2017, 19 (13) : 9075 - 9085
  • [27] Photoinduced Dynamics of Charge Carriers in Metal Halide Perovskites from an Atomistic Perspective
    Qiao, Lu
    Fang, Wei-Hai
    Long, Run
    Prezhdo, Oleg, V
    JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2020, 11 (17): : 7066 - 7082
  • [28] Energy transfer and chemical dynamics at solid surfaces: The special role of charge transfer
    Wodtke, Alec M.
    Matsiev, Daniel
    Auerbach, Daniel J.
    PROGRESS IN SURFACE SCIENCE, 2008, 83 (03) : 167 - 214
  • [29] Forster resonance energy transfer and charge transfer dynamics in ternary organic nanoparticles
    Feng, Lin
    Bi, Peng-Qing
    Yang, Xiao-Yu
    Niu, Meng-Si
    Zhang, Kang-Ning
    Wang, Fei
    Lv, Cheng-Kun
    Wen, Zhen-Chuan
    Hao, Xiao-Tao
    ORGANIC ELECTRONICS, 2018, 57 : 140 - 145
  • [30] Electron Transfer, Decoherence, and Protein Dynamics: Insights from Atomistic Simulations
    Narth, Christophe
    Gillet, Natacha
    Cailliez, Fabien
    Levy, Bernard
    de la Lande, Aurelien
    ACCOUNTS OF CHEMICAL RESEARCH, 2015, 48 (04) : 1090 - 1097