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Fabrication of three-dimensionally interconnected nanoparticle superlattices and their lithium-ion storage properties.


ABSTRACT: Three-dimensional superlattices consisting of nanoparticles represent a new class of condensed materials with collective properties arising from coupling interactions between close-packed nanoparticles. Despite recent advances in self-assembly of nanoparticle superlattices, the constituent materials have been limited to those that are attainable as monodisperse nanoparticles. In addition, self-assembled nanoparticle superlattices are generally weakly coupled due to the surface-coating ligands. Here we report the fabrication of three-dimensionally interconnected nanoparticle superlattices with face-centered cubic symmetry without the presynthesis of the constituent nanoparticles. We show that mesoporous carbon frameworks derived from self-assembled supercrystals can be used as a robust matrix for the growth of nanoparticle superlattices with diverse compositions. The resulting interconnected nanoparticle superlattices embedded in a carbon matrix are particularly suitable for energy storage applications. We demonstrate this by incorporating tin oxide nanoparticle superlattices as anode materials for lithium-ion batteries, and the resulting electrochemical performance is attributable to their unique architectures.

SUBMITTER: Jiao Y 

PROVIDER: S-EPMC4366534 | biostudies-literature | 2015 Mar

REPOSITORIES: biostudies-literature

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Fabrication of three-dimensionally interconnected nanoparticle superlattices and their lithium-ion storage properties.

Jiao Yucong Y   Han Dandan D   Ding Yi Y   Zhang Xianfeng X   Guo Guannan G   Hu Jianhua J   Yang Dong D   Dong Angang A  

Nature communications 20150303


Three-dimensional superlattices consisting of nanoparticles represent a new class of condensed materials with collective properties arising from coupling interactions between close-packed nanoparticles. Despite recent advances in self-assembly of nanoparticle superlattices, the constituent materials have been limited to those that are attainable as monodisperse nanoparticles. In addition, self-assembled nanoparticle superlattices are generally weakly coupled due to the surface-coating ligands. H  ...[more]

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