4.8 Article

In situ visualization of Li/Ag2VP2O8 batteries revealing rate-dependent discharge mechanism

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SCIENCE
卷 347, 期 6218, 页码 149-154

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AMER ASSOC ADVANCEMENT SCIENCE
DOI: 10.1126/science.1257289

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  1. U.S. Department of Energy (DOE), Office of Basic Energy Sciences [DE-SC0008512]
  2. DOE [DE-AC02-98CH10886]
  3. Brookhaven National Laboratory
  4. Gertrude and Maurice Goldhaber Distinguished Fellowship Program

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The functional capacity of a battery is observed to decrease, often quite dramatically, as discharge rate demands increase. These capacity losses have been attributed to limited ion access and low electrical conductivity, resulting in incomplete electrode use. A strategy to improve electronic conductivity is the design of bimetallic materials that generate a silver matrix in situ during cathode reduction. Ex situ x-ray absorption spectroscopy coupled with in situ energy-dispersive x-ray diffraction measurements on intact lithium/silver vanadium diphosphate (Li/Ag2VP2O8) electrochemical cells demonstrate that the metal center preferentially reduced and its location in the bimetallic cathode are rate-dependent, affecting cell impedance. This work illustrates that spatial imaging as a function of discharge rate can provide needed insights toward improving realizable capacity of bimetallic cathode systems.

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