Issue 36, 2019

α-Fe2O3 with novel double hexagonal pyramid morphology synthesized using a dual-ion co-work system as an anode for lithium-ion batteries

Abstract

In this study, α-Fe2O3 particles with novel double hexagonal pyramid morphology were synthesized via a facile hydrothermal method in a rare system of coexisting ammonium ions (NH4+) and carbonate ions (CO32−), which was different from the previously used single-ion inducing system. A series of experimental results indicated that the synergistic effects of NH4+ and CO32− played a decisive role in the formation process of α-Fe2O3 particles with the unique morphology, and the formation mechanism was attributed to the oriented aggregation and Ostwald ripening process. When utilized as anode materials for LIBs, the α-Fe2O3 particles with the double hexagonal pyramid morphology exhibited the excellent cycling stability of 700 mA h g−1 after 100 charge/discharge cycles with the high coulombic efficiency of 98% starting from the 25th cycle; this indicated that these particles could be a promising alternative anode for LIBs.

Graphical abstract: α-Fe2O3 with novel double hexagonal pyramid morphology synthesized using a dual-ion co-work system as an anode for lithium-ion batteries

Supplementary files

Article information

Article type
Paper
Submitted
25 Apr 2019
Accepted
07 Aug 2019
First published
07 Aug 2019

CrystEngComm, 2019,21, 5508-5518

α-Fe2O3 with novel double hexagonal pyramid morphology synthesized using a dual-ion co-work system as an anode for lithium-ion batteries

C. Nie, Y. Deng, H. Ren, Y. Zhao, X. Ji, L. Zhu, Z. Xing, J. Liu and Z. Ju, CrystEngComm, 2019, 21, 5508 DOI: 10.1039/C9CE00618D

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