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A semiconductor-electrochemistry model for design of high-rate Li ion battery

Journal

JOURNAL OF ENERGY CHEMISTRY
Volume 41, Issue -, Pages 100-106

Publisher

ELSEVIER
DOI: 10.1016/j.jechem.2019.04.018

Keywords

Semiconductor electrochemistry; Interface; Surface; Fermi energy; SEI

Funding

  1. National Natural Science Foundation of China [51872115]
  2. Program for the Development of Science and Technology of Jilin Province [20190201309JC]
  3. Fundamental Research Funds for the Central Universities [531107051230]
  4. Program for JLU Science and Technology Innovative Research Team (JLUSTIRT) [2017TD-09]
  5. Jilin Province/Jilin University co-Construction Project-Funds [SXGJSF2017-3, Branch-2/440050316A36]

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For designing batteries with high-rate and long-life, electronic/ionic transport and reaction must be unified for metal oxide electrodes. However, it remains challenging for effectively integrating the whole substrate/active materials/electrolyte interfaces. Herein by taking Li ion battery as example, we propose a semiconductor-electrochemistry model by which a general but novel insight has been gained into interfacial effect in batteries. Different from those traditional viewpoints, this derived model lies across from physics to electrochemistry. A reaction driving force can be expressed in terms of Fermi energy change, based on the tradeoff between electronic and ionic concentration at the reaction interfacial region. Therefore, at thermodynamic-controlled interface I of substrate/electrode, increasing contact areas can afford higher activity for active materials. Whereas at kinetically-governed interface II of electrode/electrolyte or inside active materials, it is crucial to guarantee high-reaction Li ionic concentration, with which some sufficient reaction degrees can reach. (C) 2019 Science Press and Dalian Institute of Chemical Physics, Chinese Academy of Sciences. Published by Elsevier B.V. and Science Press. All rights reserved.

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