4.7 Article

Zn-doped Tin monoxide nanobelt induced engineering a graphene and CNT supported Zn-doped Tin dioxide composite for Lithium-ion storage

期刊

JOURNAL OF COLLOID AND INTERFACE SCIENCE
卷 608, 期 -, 页码 768-779

出版社

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcis.2021.09.199

关键词

Coprecipitation; Zn-doped tin oxide; Nanobelt; Carbon nanotube; Reduced graphene oxide; Lithium-ion batteries

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A rapid coprecipitation reaction was developed to obtain nano-sized Zn-doped tin oxide samples, which showed superior electrochemical performance as an anode active material for lithium-ion batteries. The reaction mechanism for successful synthesis has been proposed, revealing the outstanding lithium-ion storage performance of the Zn-SnO2/CNT@RGO composites.
In this work, a rapid coprecipitation reaction is developed to obtain nano-sized Zn-doped tin oxide samples (Zn-SnO-II or Zn-SnO2-IV) for the first time by simply mixing tin ion (Sn2+ or Sn4+) and zinc ion (Zn2+) containing salts in a mild aqueous condition. Characterization results illustrate the Zn-SnO-II sample is constituted by an overwhelming quantity of Zn-doped SnO nanobelts and a small quantity of Zndoped SnO2 nanoparticles. The redox reaction between the Sn2+ ions from the Zn-SnO-II sample and the surface oxygen-containing functional groups from functionalized carbon nanotube (F-CNT) and graphene oxide (GO) leads to the formation of the final Zn-SnO2/CNT@RGO composites. As an anode active material for lithium-ion batteries, the Zn-SnO2/CNT@RGO product showed superior electrochemical performance than the controlled Zn-SnO2/CNT and Zn-SnO2/RGO samples, which had a high gravimetric capacity of 901.3 mAh.g (1) at a high charge and discharge current of 1000 mA.g (1) after 300 cycles and excellent rate capability. The reaction mechanism for the successful synthesis of the Zn-doped tin oxide samples has been proposed, and the insight into the outstanding lithium-ion storage performance for the Zn-SnO2/CNT@RGO composite has been revealed. The synthetic processes for both the Zn-doped tin oxides and derived carbon supported composites are straightforward and involve no harsh conditions nor complicated treatment, which have good potential for massive production and application in wider fields. (C) 2021 Elsevier Inc. All rights reserved.

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