| Literature DB >> 28934141 |
Haipeng Li1, Zhengjun Liu2, Shuang Yang3, Yan Zhao4, Yuting Feng5, Zhumabay Bakenov6, Chengwei Zhang7, Fuxing Yin8.
Abstract
ZnO/nitrogen-doped carbon nanotube (ZnO/NCNT) composite, prepared though a simple one-step sol-gel synthetic technique, has been explored for the first time as an anode material. The as-prepared ZnO/NCNT nanocomposite preserves a good dispersity and homogeneity of the ZnO nanoparticles (~6 nm) which deposited on the surface of NCNT. Transmission electron microscopy (TEM) reveals the formation of ZnO nanoparticles with an average size of 6 nm homogeneously deposited on the surface of NCNT. ZnO/NCNT composite, when evaluated as an anode for lithium-ion batteries (LIBs), exhibits remarkably enhanced cycling ability and rate capability compared with the ZnO/CNT counterpart. A relatively large reversible capacity of 1013 mAh·g-1 is manifested at the second cycle and a capacity of 664 mAh·g-1 is retained after 100 cycles. Furthermore, the ZnO/NCNT system displays a reversible capacity of 308 mAh·g-1 even at a high current density of 1600 mA·g-1. These electrochemical performance enhancements are ascribed to the reinforced accumulative effects of the well-dispersed ZnO nanoparticles and doping nitrogen atoms, which can not only suppress the volumetric expansion of ZnO nanoparticles during the cycling performance but also provide a highly conductive NCNT network for ZnO anode.Entities:
Keywords: ZnO/nitrogen-doped carbon nanotube (ZnO/NCNT) composite; anode; highly-dispersed ZnO nanoparticles; lithium ion battery; sol-gel
Year: 2017 PMID: 28934141 PMCID: PMC5666913 DOI: 10.3390/ma10101102
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1(a) XRD patterns of ZnO/NCNT and ZnO/CNT composites; inset: enlarged picture of XRD peaks appearing at 33–40°; (b) High-resolution XPS spectrum of C 1s of the ZnO/NCNT composite; (c) TG curves of the ZnO/NCNT and ZnO/CNT composites at a heating rate of 10 °C min−1 under air.
Figure 2TEM images of (a,b) ZnO/CNT composite and (c,d) ZnO/NCNT composites with the particle size distributions (inset); (e) HR-TEM image of ZnO/NCNT composite; (f) SEM image with the EDX-mapping images (inset) of ZnO/NCNT composite.
Figure 3Initial charge/discharge curves of (a) ZnO/NCNT and (b) ZnO/CNT composite anodes between 0.005 and 3 V at current density of 100 mA·g−1.
Figure 4(a) Cycling performance of the CNT, NCNT, ZnO/NCNT, and ZnO/CNT anodes at a current density of 100 mA·g−1; (b) Rate capability of the ZnO/NCNT and ZnO/CNT composite anodes at different current densities from 200 to 1600 mA·g−1.