4.6 Article

High lithium ion battery performance enhancement by controlled carbon coating of TiO2 hierarchically porous hollow spheres

期刊

RSC ADVANCES
卷 6, 期 74, 页码 70485-70492

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c6ra14895f

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  1. Department of Chemistry, University of Cambridge
  2. National Key Research Program of China [2016YFA0202602]
  3. Program for Changjiang Scholars and Innovative Research Team in University [IRT_15R52]
  4. National Science Foundation for Young Scholars of China [51302204, 21301133]
  5. International Science & Technology Cooperation Program of China [2015DFE52870]
  6. Hubei Provincial Department of Education

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Hierarchically porous TiO2/carbon hollow spheres (TiO2/C-HS) have been designed and prepared through a facile one-pot template-free hydrothermal route using sucrose as a carbon source, TiO2 solid spheres as a TiO2 source and NH4F as a structure-directing reagent. The nanocrystal constructed hierarchically porous hollow spherical structure offers enough space for electrolyte penetration and storage and a short path length for Li+ diffusion and e(-)transport. The carbon layer on TiO2 surface improves its conductivity as well as the structure stability. As a result, such a special hollow structure with carbon layers exhibits enhanced lithium storage properties comparing with the solid spheres. The TiO2/C-HS anode exhibits discharge capacities of 286, 235, 197, 164 and 127 mA h g(-1) at various rates of 0.2, 0.5, 1, 2 and 5C (1C = 168 mA g(-1)), respectively. A capacity of 175 mA h g(-1) still remains after 200 cycles at 1C, demonstrating a very high lithium insertion coefficient of 0.52, a little higher than the theoretical value of 0.5. SEM, TEM, HRTEM and electrochemical impedance spectra (EIS) techniques have been utilized to understand the Li+ insertion process and structural stability. Our results reveal that the high electrochemical performance of the TiO2/C-HS anode can be attributed to the synergy of the hierarchically porous hollow structure, carbon layer and newly formed numerous similar to 5 nm Li2Ti2O4 on the surface of the TiO2 nanocrystals.

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