| Literature DB >> 24888747 |
Haiou Zhu1, Chong Xiao1, Hao Cheng2, Fabian Grote3, Xiaodong Zhang1, Tao Yao2, Zhou Li1, Chengming Wang1, Shiqiang Wei2, Yong Lei3, Yi Xie1.
Abstract
Superlattices have attracted great interest because of their tailorable electronic properties at the interface. However, the lack of an efficient and low-cost synthetic method represents a huge challenge to implement superlattices into practical applications. Herein, we report a space-confined nanoreactor strategy to synthesize flexible freestanding graphene-based superlattice nanosheets, which consist of alternately intercalated monolayered metal-oxide frameworks and graphene. Taking vanadium oxide as an example, clear-cut evidences in extended X-ray absorption fine structure, high-resolution transmission electron microscopy and infrared spectra have confirmed that the vanadium oxide frameworks in the superlattice nanosheets show high symmetry derived from the space-confinement and electron-donor effect of graphene layers, which enable the superlattice nanosheets to show emerging magnetocaloric effect. Undoubtedly, this freestanding and flexible superlattice synthesized from a low-cost and scalable method avoids complex transferring processes from growth substrates for final applications and thus should be beneficial to a wide variety of functionalized devices.Entities:
Year: 2014 PMID: 24888747 DOI: 10.1038/ncomms4960
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919