| Literature DB >> 30430108 |
Ziming Yang1, Hong-Hui Wu2, Zhiming Zheng1, Yong Cheng1, Pei Li1, Qiaobao Zhang1, Ming-Sheng Wang1.
Abstract
One of the crucial challenges for applyingEntities:
Keywords: Sn@C nanoboxes; anode material; electrochemical performance; lithium-ion battery; yolk-shell structure
Year: 2018 PMID: 30430108 PMCID: PMC6220033 DOI: 10.3389/fchem.2018.00533
Source DB: PubMed Journal: Front Chem ISSN: 2296-2646 Impact factor: 5.221
Figure 1Schematic diagram of the fabrication procedure of yolk-shell Sn@C nanobox.
Figure 2(A) XRD pattern of precursor and Sn@C, (B) TGA profile of Sn@C.
Figure 3(a) SEM, (b) TEM image of cubic ZnSnO3, (c) SEM of ZnSnO3@RF, (d) TEM, inset is its corresponding SAED patterns taken from the rectangular area, (e) SEM, and (f) high-resolution TEM image of Sn@C, (g) its corresponding STEM image, (h,i) corresponding elemental mapping of (h) Carbon and (i) Sn, respectively.
Figure 4(A) CV curves of Sn@C at a scanning rate of 0.1 mV s−1 between 0.1 and 3 V, (B) charge-discharge curves of Sn@C at 0.8A g−1, (c) cycling performance of Sn@C and Sn NPs at 0.8 A g−1, (D) rate capacity of Sn@C and Sn NPs, (E) Nyquist plots of samples before cycle, (F) Nyquist plots of samples after 500 cycles.
Figure 5(a) SEM and (b) TEM of Sn@C after 40 cycles at 0.8 A g−1, (c) SEM, and (d) TEM of Sn@C after 500 cycles at 0.8 A g−1.
Figure 6(A) Rate capacity and (B) cycling performance of Sn@C at 3 A g−1 after 500 cycles at 0.8 A g−1.