Issue 37, 2016

General synthesis of three-dimensional alkali metal vanadate aerogels with superior lithium storage properties

Abstract

Three-dimensional (3D) aerogel materials assembled from simplex nanostructures have many advantages in the energy field, but the synthesis of alkali metal vanadate aerogels remains challenging. Herein, we demonstrate a general method for the preparation of a series of 3D alkali metal vanadate aerogels, including NaV3O8, NaV6O15, and K0.25V2O5. The aerogels with a large porous structure built from cross-linked ultra-long nanofibers can be prepared via the hydrothermal self-assembly route followed by a freeze-drying process. The resulting aerogels, e.g. NaV3O8, NaV6O15, and K0.25V2O5, exhibit excellent Li+ storage properties in terms of high specific capacity, good rate capability, and outstanding cyclic stability as cathodes for lithium batteries. Importantly, the NaV3O8 aerogel demonstrates an excellent long-life cyclic performance of 600 cycles at 1000 mA g−1 with no capacity fading. To account for the mechanisms that affect the electrochemical properties, a systematic study is conducted. The superior performances may be due to the superior mechanical stability, good reversibility of lithium insertion/de-insertion and excellent interior structural stability. It is believed that our strategy could probably be extended to prepare other metal vanadate aerogel materials with great promise for various applications.

Graphical abstract: General synthesis of three-dimensional alkali metal vanadate aerogels with superior lithium storage properties

Supplementary files

Article information

Article type
Paper
Submitted
03 Jul 2016
Accepted
24 Aug 2016
First published
25 Aug 2016

J. Mater. Chem. A, 2016,4, 14408-14415

General synthesis of three-dimensional alkali metal vanadate aerogels with superior lithium storage properties

G. Fang, J. Zhou, C. Liang, Y. Cai, A. Pan, X. Tan, Y. Tang and S. Liang, J. Mater. Chem. A, 2016, 4, 14408 DOI: 10.1039/C6TA05568K

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