• 文献标题:   Ultrathin Hexagonal Hybrid Nanosheets Synthesized by Graphene Oxide-Assisted Exfoliation of beta-Co(OH)(2) Mesocrystals
  • 文献类型:   Article
  • 作  者:   DENG SZ, CHERIAN CT, LIU XI, TAN HR, YEO LH, YU XJ, RUSYDI A, CHOWDARI BVR, FAN HM, SOW CH
  • 作者关键词:   cobalt, graphene, lithium, nanostructure, xray absorption spectroscopy
  • 出版物名称:   CHEMISTRYA EUROPEAN JOURNAL
  • ISSN:   0947-6539 EI 1521-3765
  • 通讯作者地址:   Natl Univ Singapore
  • 被引频次:   10
  • DOI:   10.1002/chem.201403068
  • 出版年:   2014

▎ 摘  要

In the present study, we report the synthesis of a high-quality, single-crystal hexagonal beta-Co(OH)(2) nanosheet, exhibiting a thickness down to ten atomic layers and an aspect ratio exceeding 900, by using graphene oxide (GO) as an exfoliant of beta-Co(OH)(2) nanoflowers. Unlike conventional approaches using ionic precursors in which morphological control is realized by structure-directing molecules, the beta-Co(OH)(2) flower-like superstructures were first grown by a nanoparticle-mediated crystallization process, which results in large 3D superstructure consisting of ultrathin nanosheets interspaced by polydimethoxyaniline (PDMA). Thereafter, beta-Co(OH)(2) nanoflowers were chemically exfoliated by surface-active GO under hydrothermal conditions into unilamellar single-crystal nanosheets. In this reaction, GO acts as a two-dimensional (2D) amphiphile to facilitate the exfoliation pro-cess through tailored interactions between organic and inorganic molecules. Meanwhile, the on-site conjugation of GO and Co(OH)(2) promotes the thermodynamic stability of freestanding ultrathin nanosheets and restrains further growth through Oswald ripening. The unique 2D structure combined with functionalities of the hybrid ultrathin Co(OH)(2) nanosheets on rGO resulted in a remarkably enhanced lithium-ion storage performance as anode materials, maintaining a reversible capacity of 860 mAhg(-1) for as many as 30 cycles. Since mesocrystals are ubiquitous and rich in morphological diversity, the strategy of the GO-assisted exfoliation of mesocrystals developed here provides an opportunity for the synthesis of new functional nanostructures that could bear importance in clean renewable energy, catalysis, photoelectronics, and photonics.