Affiliations 

  • 1 Department of Chemistry , Virginia Tech , Blacksburg , Virginia 24061 , United States
  • 2 Department of Physics and the Collaborative Innovation Center for Optoelectronic Semiconductors and Efficient Devices , Xiamen University , Xiamen 361005 , China
  • 3 Stanford Synchrotron Radiation Lightsource , SLAC National Accelerator Laboratory , Menlo Park , California 94025 , United States
  • 4 Institute of New Energy for Vehicles, School of Materials Science and Engineering , Tongji University , Shanghai 201804 , China
  • 5 Department of Geosciences , Virginia Tech , Blacksburg , Virginia 24061 , United States
  • 6 Advanced Photon Source , Argonne National Laboratory , Argonne , Illinois 60439 , United States
  • 7 Department of Physics and Astronomy , University of California , Irvine , California 92697 , United States
ACS Appl Mater Interfaces, 2019 Oct 16;11(41):37885-37891.
PMID: 31589393 DOI: 10.1021/acsami.9b14729

Abstract

Elemental doping represents a prominent strategy to improve interfacial chemistry in battery materials. Manipulating the dopant spatial distribution and understanding the dynamic evolution of the dopants at the atomic scale can inform better design of the doping chemistry for batteries. In this work, we create a targeted hierarchical distribution of Ti4+, a popular doping element for oxide cathode materials, in LiNi0.8Mn0.1Co0.1O2 primary particles. We apply multiscale synchrotron/electron spectroscopy and imaging techniques as well as theoretical calculations to investigate the dynamic evolution of the doping chemical environment. The Ti4+ dopant is fully incorporated into the TMO6 octahedral coordination and is targeted to be enriched at the surface. Ti4+ in the TMO6 octahedral coordination increases the TM-O bond length and reduces the covalency between (Ni, Mn, Co) and O. The excellent reversibility of Ti4+ chemical environment gives rise to superior oxygen reversibility at the cathode-electrolyte interphase and in the bulk particles, leading to improved stability in capacity, energy, and voltage. Our work directly probes the chemical environment of doping elements and helps rationalize the doping strategy for high-voltage layered cathodes.

* Title and MeSH Headings from MEDLINE®/PubMed®, a database of the U.S. National Library of Medicine.