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

机译:三维互连纳米粒子超晶格的制备及其锂离子存储性能

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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.
机译:由纳米粒子组成的三维超晶格代表了一类新的凝聚材料,其凝聚态是由于紧密堆积的纳米粒子之间的相互作用而产生的。尽管最近在纳米颗粒超晶格的自组装方面取得了进展,但是构成材料已经限于可作为单分散纳米颗粒获得的材料。另外,由于表面涂覆的配体,自组装的纳米粒子超晶格通常弱耦合。在这里,我们报告了具有面心立方对称性的三维互连纳米粒子超晶格的制造,而无需预先合成组成纳米粒子。我们表明,自组装超晶体衍生的中孔碳框架可以用作具有不同组成的纳米粒子超晶格生长的稳健基质。嵌入在碳基质中的所得互连纳米颗粒超晶格特别适合于储能应用。我们通过掺入氧化锡纳米粒子超晶格作为锂离子电池的负极材料来证明这一点,所产生的电化学性能归因于其独特的结构。

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