Improvement of the electrochemical properties of sulfur cathode materials with multiwalled carbon nanotubes
β Scribed by Feng Wu; Sheng-xian Wu; Ren-jie Chen; Shi Chen; Guo-qing Wang
- Publisher
- Elsevier Science
- Year
- 2011
- Tongue
- English
- Weight
- 86 KB
- Volume
- 49
- Category
- Article
- ISSN
- 0008-6223
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β¦ Synopsis
This paper analyzes graphene-related papers using the Thomson data analyzer according to publication year, country, organization, subject and research focus, and compares the research situation of China with that of the international community in this field. We find that research relevant to graphene has developed very rapidly since 2005, which is mainly in the fields of polymer physics, materials science and applied physics. The main countries that are engaged in the study of graphene are the United States, China, Japan, Britain, Germany, etc. The hot topic in this field is the properties of graphene such as electronic conductivity and thermal conductivity, preparation methods and composite materials. In the recent 2 years, China has paid great attention to graphene research, but is far behind the leading countries.
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We have investigated the ΓΏeld and the bias-voltage dependencies of the electrical conductance, as well as the temperature dependence of the thermoelectric power of multiwall carbon nanotubes. Consistent picture has been obtained which indicates that electron-electron strong correlation is a major rh
Carbon-coated sulfur cathodes were prepared by sputtering method and electrochemical properties of lithium/sulfur cells were investigated. As a result of charge/discharge test, sulfur cathode having carbon layer of 180 Γ showed the highest capacity of 1178 mA hg -1 at first discharge. Moreover, disc
## Abstract Electrochemical capacitive behaviour of the electropolymeric nickel tetraβaminophthalocyanine (polyβNiTAPc) supported on multiwalled carbon nanotube (MWCNT) platform is described. From the data in 1β M H~2~SO~4~, the MWCNTβpolyβNiTAPc exhibited superior capacitance (112β mF cm^β2^ or 777β