4.7 Article

Effects of structural patterns and degree of crystallinity on the performance of nanostructured ZnO as anode material for lithium-ion batteries

期刊

JOURNAL OF ALLOYS AND COMPOUNDS
卷 627, 期 -, 页码 455-462

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.jallcom.2014.11.195

关键词

Nanostructured zinc oxide; Structural pattern; Degree of crystallinity; Anode material; Lithium-ion battery

资金

  1. Fundamental Research Funds for the Central Universities [2014-Ia-031, 2012-Ia-039]
  2. Natural Science Foundation of China [11474226]

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The effects of structural patterns and degree of crystallinity on the electrochemical performance of ZnO were systematically studied using a controllable synthesis. The microspheres assembled with distorted nanosheets, hexagonal nanorods and radial assembly of nanorods of ZnO were successfully prepared by the hydrothermal reaction of zinc nitrate, hexamethylenetetramine and different amount of trisodium citrate. ZnO microspheres were calcinated at different temperatures (300, 600 and 900 degrees C) to increase their degree of crystallization. Constant current charge and discharge measurements show that the capacity retention of the microspheres and radial assembled nanorods are higher than that of hexagonal nanorods. This may be due to their inner spacing of specific structure patterns that can accommodate and restrain the volume changes during cycling. Additionally, the capacity of ZnO microspheres can be improved by short-time calcinations at 600 or 900 degrees C for their crystallization. The studies of differential capacity versus potential plots indicate that the enhanced degree of crystallization facilitates the alloying and dealloying of the reduction products of ZnO. Therefore, both large specific capacity and good capacity retention can be expected with highly crystallized specific nanostructures of ZnO with the sufficient inner spacing. The ZnO microspheres calcinated at 600 degrees C show the best performance with a specific capacity of 1328.2 mA h g(-1) for the first cycle and 662.8 mA h g(-1) for the 50th cycle at 0.1 C with an operating potential of 0.05-3.00 V. (C) 2014 Elsevier B. V. All rights reserved.

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