4.8 Article

General Strategy to Synthesize Uniform Mesoporous TiO2/Graphene/Mesoporous TiO2 Sandwich-Like Nanosheets for Highly Reversible Lithium Storage

期刊

NANO LETTERS
卷 15, 期 3, 页码 2186-2193

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.5b00291

关键词

mesoporous TiO2; graphene; lithium-ion batteries; sandwich-like sheets; coating

资金

  1. State Key Basic Research Program of the PRC [2012CB224805, 2012CB910602, 2013CB934104]
  2. Shanghai Sci. & Tech. Committee [14JC1400700]
  3. NSF of China [21210004, 21025519, 21335002, 21471034]
  4. Deanship of Scientific Research at King Saud University [RGP-227]

向作者/读者索取更多资源

Uniform oxide deposition on graphene to form a sandwich-like configuration is a well-known challenge mainly due to their large lattice mismatches and poor affinities. Herein, we report a general strategy to synthesize uniform mesoporous TiO2/graphene/mesoporous TiO2 sandwich-like nanosheets (denoted as G@mTiO(2)), which cannot be achieved by conventional one-pot synthetic methods. We show that by rational control of hydrolysis and condensation of Ti precursors in a slow way, GO sheets can be conformably coated by amorphous TiO2 shells, which then can be facilely transformed into the well-defined G@mTiO(2) nanosheets by annealing. This amorphous-to-crystalline strategy conveniently allows bypassing strain fields that would inevitably arise if direct growth of mesoporous anatase shells on graphene. As distinct from the most common structures of graphene-based composites (mixed, wrapped, or anchored models), the resultant materials display a uniform sandwich-like configuration: few-layer graphene conformably encapsulated by mesoporous TiO2 shells. This new G@mTiO(2) nanosheet exhibits ultrathin nature (similar to 34 nm), small size and high crystalline nanocrystals (similar to 6 nm), high surface areas (similar to 252 m(2)/g) and uniform mesopores (similar to 3.4 nm). We further show that the thickness of mesoporous TiO2 shells can be facilely adjusted as desired by controlling the ammonia content, and this facile strategy can be easily extended to design other oxide/graphene/oxide sandwich-like materials. More importantly, we showcase the benefits of the resultant G@mTiO(2) nanosheets as anodes in lithium ion batteries: they deliver an extra high capacity, an excellent high-rate capability, and long cycle life.

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