| Literature DB >> 27808271 |
Peng Zheng1, Ting Liu1, Ying Su1, Lifeng Zhang1, Shouwu Guo1,2.
Abstract
Through electrostatic interaction and high-temperature reduction methods, rGO was closely coated onto the surface of al">TiO2 nanotubes. Even at a high temperature of 700 °C, the nanotube morphology ofEntities:
Year: 2016 PMID: 27808271 PMCID: PMC5093559 DOI: 10.1038/srep36580
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(a) FE-SEM image of titanate nanotubes calcined at 500 °C under an Ar atmosphere; (b) FE-SEM image of TiO2/rGO-7ArH, the inset is the corresponding EDX spectrum; (c,d) HRTEM images of TiO2/rGO-7ArH.
Figure 2(a) XRD patterns of rGO, the standard TiO2 sample (JCPDS: 99-0008), rGO/TiO2-7Ar and rGO/TiO2-7ArH; (b) Raman spectra of rGO/TiO2-7Ar and rGO/TiO2-7ArH.
Figure 3(a) Ti 2p, (b) O 1s, and (c) C 1s XPS spectra of rGO/TiO2-7ArH; (d) EPR spectrum of rGO/TiO2-7ArH collected at room temperature.
Figure 4Electrochemical properties of rGO/TiO2-7ArH composites: (a) CV measurements at a scan rate of 0.5 mV s−1, (b) discharge–charge profiles at 0.1 A g−1, (c) rate performances, and (d) cycling performances at 0.5 A g−1.
Figure 5(a) Cycling performance, (b) discharge–charge curves of the 20th cycle at 100 mA g−1 in the range from 1.0 to 3.0 V; (c) EPR spectra; (d) Nyquist plots for the EIS data of rGO/TiO2-6Ar, rGO/TiO2-7Ar, rGO/TiO2-6ArH and rGO/TiO2-7ArH.