4.8 Review

Chemical Heterointerface Engineering on Hybrid Electrode Materials for Electrochemical Energy Storage

期刊

SMALL METHODS
卷 5, 期 8, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smtd.202100444

关键词

built-in electric field; electrochemical performances; energy storage; heterointerface engineering; hybrid electrode materials

资金

  1. Natural Science Foundation of Shaanxi Province [2020JQ-638]
  2. Special Research Project of Education Department of Shaanxi Provincial Government [20JK0794]
  3. Young Talent fund of University Association for Science and Technology in Shaanxi, China [20200418]
  4. Science and Technology Planning Project of Beilin District [GX2036]
  5. Doctoral Scientific Research Startup Foundation of Xi'an University of Technology [101-451119016]
  6. Clean Vehicles, US-China Clean Energy Research Centre (CERC-CVC2) under US DOE EERE Vehicle Technologies Office
  7. DOE Office of Science by UChicago Argonne, LLC [DE-AC02-06CH11357]

向作者/读者索取更多资源

Chemical heterointerfaces in hybrid electrode materials play a crucial role in optimizing electrochemical performances by accelerating charge transport, increasing storage sites, and enhancing structural stability. Recent research has focused on introducing chemical heterointerfaces in metal-ion batteries, supercapacitors, and Li-S batteries for improved energy storage applications.
The chemical heterointerfaces in hybrid electrode materials play an important role in overcoming the intrinsic drawbacks of individual materials and thus expedite the in-depth development of electrochemical energy storage. Benefiting from the three enhancement effects of accelerating charge transport, increasing the number of storage sites, and reinforcing structural stability, the chemical heterointerfaces have attracted extensive interest and the electrochemical performances of hybrid electrode materials have been significantly optimized. In this review, recent advances regarding chemical heterointerface engineering in hybrid electrode materials are systematically summarized. Especially, the intrinsic behaviors of chemical heterointerfaces on hybrid electrode materials are refined based on built-in electric field, van der Waals interaction, lattice mismatch and connection, electron cloud bias and chemical bond, and their combination. The strategies for introducing chemical heterointerfaces are classified into in situ local transformation, in situ growth, cosynthesis, and other strategy. The recent progress about the chemical heterointerfaces engineering specially focusing on metal-ion batteries, supercapacitors, and Li-S batteries are introduced in detail. Furthermore, the classification and characterization of chemical heterointerfaces are briefly described. Finally, the emerging challenges and perspectives about future directions of chemical heterointerface engineering are proposed.

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