TY - JOUR
T1 - Appraisal of carbon-coated Li4Ti5O12acanthospheres from optimized two-step hydrothermal synthesis as a superior anode for sodium-ion batteries
AU - Sha, Yujing
AU - Li, Li
AU - Wei, Shenying
AU - Shao, Zongping
N1 - Publisher Copyright:
© 2017 Elsevier B.V.
PY - 2017
Y1 - 2017
N2 - In this study, carbon-coated nanostructured Li4Ti5O12acanthospheres with a highly porous and open structure, are prepared by a two-step hydrothermal synthesis, and are investigated as the anode for sodium-ion batteries (SIBs). The impact of the amount of glucose on the spinel-phase formation, the secondary morphological structure, carbon content and graphitization of the as-prepared C/Li4Ti5O12microspheres is studied. Additionally, the subsequent electrode performance, including capacity, rate capability, and cycling stability, particularly at elevated temperatures, is emphasized. By optimizing the amount of the glucose organic carbon precursor, attractive capacities of 186 mAh g−1at 0.2 C, 141 mAh g−1at 2.0 C, and 68 mAh g−1at 10 C are achieved for the as-synthesized C/Li4Ti5O12, better than most reports on similar Li4Ti5O12electrodes, suggesting the beneficial effect of morphology and carbon coating on the electrode performance. In addition, an outstanding cycling stability is demonstrated, with capacity retention of 93% after continuous cycling for 400 cycles at 1.0 C. At elevated temperatures, the important role of carbon in suppressing SEI formation and thus improving the cycling stability is highlighted. This suggests that the hierarchical carbon-modified Li4Ti5O12acanthosphere from the optimized two-step hydrothermal synthesis is a promising anode material for SIBs with superior electrode performance.
AB - In this study, carbon-coated nanostructured Li4Ti5O12acanthospheres with a highly porous and open structure, are prepared by a two-step hydrothermal synthesis, and are investigated as the anode for sodium-ion batteries (SIBs). The impact of the amount of glucose on the spinel-phase formation, the secondary morphological structure, carbon content and graphitization of the as-prepared C/Li4Ti5O12microspheres is studied. Additionally, the subsequent electrode performance, including capacity, rate capability, and cycling stability, particularly at elevated temperatures, is emphasized. By optimizing the amount of the glucose organic carbon precursor, attractive capacities of 186 mAh g−1at 0.2 C, 141 mAh g−1at 2.0 C, and 68 mAh g−1at 10 C are achieved for the as-synthesized C/Li4Ti5O12, better than most reports on similar Li4Ti5O12electrodes, suggesting the beneficial effect of morphology and carbon coating on the electrode performance. In addition, an outstanding cycling stability is demonstrated, with capacity retention of 93% after continuous cycling for 400 cycles at 1.0 C. At elevated temperatures, the important role of carbon in suppressing SEI formation and thus improving the cycling stability is highlighted. This suggests that the hierarchical carbon-modified Li4Ti5O12acanthosphere from the optimized two-step hydrothermal synthesis is a promising anode material for SIBs with superior electrode performance.
KW - Carbon coating
KW - High rate performance
KW - LiTiO
KW - Sodium-ion batteries
UR - http://www.scopus.com/inward/record.url?scp=85013216827&partnerID=8YFLogxK
U2 - 10.1016/j.jallcom.2017.02.126
DO - 10.1016/j.jallcom.2017.02.126
M3 - 文章
AN - SCOPUS:85013216827
SN - 0925-8388
VL - 705
SP - 164
EP - 175
JO - Journal of Alloys and Compounds
JF - Journal of Alloys and Compounds
ER -