4.8 Article

Atomic-Scale Visualization of Electrochemical Lithiation Processes in Monolayer MoS2 by Cryogenic Electron Microscopy

期刊

ADVANCED ENERGY MATERIALS
卷 9, 期 47, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/aenm.201902773

关键词

conversion reaction; cryogenic electron microscopy; intercalation reaction; lithium ion batteries; molybdenum disulfide

资金

  1. CHESS
  2. Energy Materials Center at Cornell (EMC2)
  3. National Science Foundation (NSF) [DMR-1654596]
  4. Packard Foundation
  5. NSF Materials Research Science and Engineering Centers (MRSEC) program [DMR-1719875]
  6. NSF [MRI-1429155]
  7. Cornell University
  8. Weill Institute
  9. Kavli Institute at Cornell
  10. Air Force Office of Scientific Research (AFOSR) Multidisciplinary Research Program of the University Research Initiative (MURI) [FA9550-16-1-003]
  11. Platform for the Accelerated Realization, Analysis, and Discovery of Interface Materials (PARADIM) Materials Innovation Platform in-house program by NSF [DMR-1539918]
  12. Korea Institute of Science and Technology (KIST) Institutional Program [2V07080-19-P148]

向作者/读者索取更多资源

While lithium ion batteries with electrodes based on intercalation compounds have dominated the portable energy storage market for decades, the energy density of these materials is fundamentally limited. Today, rapidly growing demand for this type of energy storage is driving research into materials that utilize alternative reaction mechanisms to enable higher energy densities. Transition metal compounds are one such class of materials, with storage enabled by conversion reactions, where the material is converted to new compound upon lithiation. MoS2 is one example of this type of material that has generated a large amount of interest recently due to its high theoretical lithium storage capacity compared to graphite. Here, cryogenic scanning transmission electron microscopy techniques are used to reveal the atomic-scale processes that occur during reaction of a model monolayer MoS2 system by enabling the unaltered atomic structure to be determined at various levels of lithiation. It is revealed that monolayer MoS2 can undergo a conversion reaction even with no substrate, and that the resulting particles are smaller than those that form in bulk MoS2, likely due to the more limited 2D diffusion. Additionally, while bilayer MoS2 undergoes intercalation with a corresponding phase transition before conversion, monolayer MoS2 does not.

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