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Interface and Morphology Engineered Amorphous Si for Ultrafast Electrochemical Lithium Storage.
Sonia, Farjana J; Haider, Golam; Ghosh, Subrata; Müller, Martin; Volochanskyi, Oleksandr; Bousa, Milan; Plsek, Jan; Kamruddin, Mohammed; Fejfar, Antonín; Kalbác, Martin; Frank, Otakar.
Afiliação
  • Sonia FJ; J. Heyrovsky Institute of Physical Chemistry of the Czech Academy of Sciences, v.v.i., Dolejskova 2155/3, Prague, 18223, Czech Republic.
  • Haider G; J. Heyrovsky Institute of Physical Chemistry of the Czech Academy of Sciences, v.v.i., Dolejskova 2155/3, Prague, 18223, Czech Republic.
  • Ghosh S; Micro and Nanostructured Materials Laboratory -NanoLab, Department of Energy, Politecnico di Milano, via Ponzio 34/3, Milano, 20133, Italy.
  • Müller M; Surface and Nanoscience Division, Materials Science Group, Indira Gandhi Centre for Atomic Research-Homi Bhabha National Institute, Kalpakkam, 603102, India.
  • Volochanskyi O; FZU (Institute of Physics of the Czech Academy of Sciences), Prague, 16200, Czech Republic.
  • Bousa M; J. Heyrovsky Institute of Physical Chemistry of the Czech Academy of Sciences, v.v.i., Dolejskova 2155/3, Prague, 18223, Czech Republic.
  • Plsek J; Faculty of Chemical Engineering, Department of Physical Chemistry, University of Chemistry and Technology in Prague, Technická 5, Prague, 16628, Czech Republic.
  • Kamruddin M; J. Heyrovsky Institute of Physical Chemistry of the Czech Academy of Sciences, v.v.i., Dolejskova 2155/3, Prague, 18223, Czech Republic.
  • Fejfar A; J. Heyrovsky Institute of Physical Chemistry of the Czech Academy of Sciences, v.v.i., Dolejskova 2155/3, Prague, 18223, Czech Republic.
  • Kalbác M; Surface and Nanoscience Division, Materials Science Group, Indira Gandhi Centre for Atomic Research-Homi Bhabha National Institute, Kalpakkam, 603102, India.
  • Frank O; FZU (Institute of Physics of the Czech Academy of Sciences), Prague, 16200, Czech Republic.
Small ; 20(29): e2311250, 2024 Jul.
Article em En | MEDLINE | ID: mdl-38431938
ABSTRACT
Ultrafast high-capacity lithium-ion batteries are extremely desirable for portable electronic devices, where Si is the most promising alternative to the conventional graphite anode due to its very high theoretical capacity. However, the low electronic conductivity and poor Li-diffusivity limit its rate capability. Moreover, high volume expansion/contraction upon Li-intake/uptake causes severe pulverization of the electrode, leading to drastic capacity fading. Here, interface and morphology-engineered amorphous Si matrix is being reported utilizing a few-layer vertical graphene (VG) buffer layer to retain high capacity at both slow and fast (dis)charging rates. The flexible mechanical support of VG due to the van-der-Waals interaction between the graphene layers, the weak adhesion between Si and graphene, and the highly porous geometry mitigated stress, while the three-dimensional mass loading enhanced specific capacity. Additionally, the high electronic conductivity of VG boosted rate-capability, resulting in a reversible gravimetric capacity of ≈1270 mAh g-1 (areal capacity of ≈37 µAh cm-2) even after 100 cycles at an ultrafast cycling rate of 20C, which provides a fascinating way for conductivity and stress management to obtain high-performance storage devices.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article