Issue 19, 2018

Construction of uniform transition-metal phosphate nanoshells and their potential for improving Li-ion battery performance

Abstract

The construction of uniform core–shell nanostructures using transition-metal phosphates as the shell has been a long-standing challenge in the field of nanotechnology. Due to their extremely low solubility constants, metal phosphates are prone to precipitate independently in solution, making a heterogeneous growth around the preexisting seeds extremely hard to achieve. Here, we demonstrated that it is possible to overcome the hurdles arising from their intrinsic growth habit, and form uniform metal phosphate nanoshells with their thickness tuned with nanometer accuracy. Particularly, for the formation of different nanoshells including Ni3(PO4)2, Co3(PO4)2, and Mn3(PO4)2, it has been found that a cooperative effort to control both the solvent environment and the precipitating agent is critical to tuning the growth kinetics of these metal phosphates, making it convenient for us to grow uniform nanoshells around a large variety of seeds. The application of this synthetic protocol for the surface treatment of LiNi0.5Mn1.5O4, a well-known high voltage cathode material in lithium ion batteries, demonstrates that a 4 nm coating layer of Co3(PO4)2 can be achieved as a protective shell, which provides a much improved cycling stability to the electrode and holds promising potential for its application as a high energy cathode.

Graphical abstract: Construction of uniform transition-metal phosphate nanoshells and their potential for improving Li-ion battery performance

Supplementary files

Article information

Article type
Paper
Submitted
07 Feb 2018
Accepted
21 Apr 2018
First published
23 Apr 2018

J. Mater. Chem. A, 2018,6, 8992-8999

Construction of uniform transition-metal phosphate nanoshells and their potential for improving Li-ion battery performance

D. Zhang, L. Hu, Y. Sun, J. Piao, X. Tao, Y. Xu, A. Cao and L. Wan, J. Mater. Chem. A, 2018, 6, 8992 DOI: 10.1039/C8TA01320A

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