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Characterization of Sulfur and Nanostructured Sulfur Battery Cathodes in Electron Microscopy Without Sublimation Artifacts.
Levin, Barnaby D A; Zachman, Michael J; Werner, Jörg G; Sahore, Ritu; Nguyen, Kayla X; Han, Yimo; Xie, Baoquan; Ma, Lin; Archer, Lynden A; Giannelis, Emmanuel P; Wiesner, Ulrich; Kourkoutis, Lena F; Muller, David A.
Afiliação
  • Levin BD; 1School of Applied and Engineering Physics,Cornell University,Ithaca,NY 14853,USA.
  • Zachman MJ; 1School of Applied and Engineering Physics,Cornell University,Ithaca,NY 14853,USA.
  • Werner JG; 2Department of Materials Science and Engineering,Cornell University,Ithaca,NY 14853,USA.
  • Sahore R; 2Department of Materials Science and Engineering,Cornell University,Ithaca,NY 14853,USA.
  • Nguyen KX; 1School of Applied and Engineering Physics,Cornell University,Ithaca,NY 14853,USA.
  • Han Y; 1School of Applied and Engineering Physics,Cornell University,Ithaca,NY 14853,USA.
  • Xie B; 2Department of Materials Science and Engineering,Cornell University,Ithaca,NY 14853,USA.
  • Ma L; 2Department of Materials Science and Engineering,Cornell University,Ithaca,NY 14853,USA.
  • Archer LA; 3School of Chemical and Biomolecular Engineering,Cornell University,Ithaca,NY 14853,USA.
  • Giannelis EP; 2Department of Materials Science and Engineering,Cornell University,Ithaca,NY 14853,USA.
  • Wiesner U; 2Department of Materials Science and Engineering,Cornell University,Ithaca,NY 14853,USA.
  • Kourkoutis LF; 1School of Applied and Engineering Physics,Cornell University,Ithaca,NY 14853,USA.
  • Muller DA; 1School of Applied and Engineering Physics,Cornell University,Ithaca,NY 14853,USA.
Microsc Microanal ; 23(1): 155-162, 2017 02.
Article em En | MEDLINE | ID: mdl-28228169
ABSTRACT
Lithium sulfur (Li-S) batteries have the potential to provide higher energy storage density at lower cost than conventional lithium ion batteries. A key challenge for Li-S batteries is the loss of sulfur to the electrolyte during cycling. This loss can be mitigated by sequestering the sulfur in nanostructured carbon-sulfur composites. The nanoscale characterization of the sulfur distribution within these complex nanostructured electrodes is normally performed by electron microscopy, but sulfur sublimates and redistributes in the high-vacuum conditions of conventional electron microscopes. The resulting sublimation artifacts render characterization of sulfur in conventional electron microscopes problematic and unreliable. Here, we demonstrate two techniques, cryogenic transmission electron microscopy (cryo-TEM) and scanning electron microscopy in air (airSEM), that enable the reliable characterization of sulfur across multiple length scales by suppressing sulfur sublimation. We use cryo-TEM and airSEM to examine carbon-sulfur composites synthesized for use as Li-S battery cathodes, noting several cases where the commonly employed sulfur melt infusion method is highly inefficient at infiltrating sulfur into porous carbon hosts.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2017 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2017 Tipo de documento: Article