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Mendeleev Communications, 2013, Volume 23, Issue 3, Pages 153–154
DOI: https://doi.org/10.1016/j.mencom.2013.05.011
(Mi mendc2645)
 

This article is cited in 11 scientific papers (total in 11 papers)

Communications

Synthesis of High-quality Graphite-coated Iron Composite Nanoparticles by a Rapid Gas-phase Chemical Reaction

N. Luoab, T. Chenb, K. Liuab, Ya. Shenb

a Center for Applied Physics and Technology, Peking University, Beijing, China
b LTCS and Department of Mechanics & Aerospace Engineering, College of Engineering, Peking University, Beijing, China
Abstract: A new strategy was applied to effectively synthesize spherical core shell structural graphite-coated iron (Fe@G) composite nanoparticles, which were characterized by XRD, TEM, EDX, SAED and XPS.
Keywords: composite nanoparticles, microstructure, graphite coated iron, XPS, rapid chemical reaction.
Document Type: Article
Language: English


Citation: N. Luo, T. Chen, K. Liu, Ya. Shen, “Synthesis of High-quality Graphite-coated Iron Composite Nanoparticles by a Rapid Gas-phase Chemical Reaction”, Mendeleev Commun., 23:3 (2013), 153–154
Linking options:
  • https://www.mathnet.ru/eng/mendc2645
  • https://www.mathnet.ru/eng/mendc/v23/i3/p153
  • This publication is cited in the following 11 articles:
    1. V. A. Polukhin, N. A. Vatolin, “Thermal Stability and Deformation Mechanisms in Graphene- or Silicene-Reinforced Layered and Matrix Metallic Composites”, Russ. Metall., 2018:8 (2018), 685  crossref
    2. Hokon Kim, Heon-Cheol Shin, “Effect of Synthesis Temperature on the Composition of Electrolytic Iron Phosphide”, J. Electrochem. Sci. Technol, 9:1 (2018), 78  crossref
    3. N. Luo, H. Jing, Zh. Ma, R. Chen, “Gaseous detonation chemical synthesis of onion-like carbons”, Mendeleev Commun., 27:2 (2017), 195–197  mathnet  crossref
    4. A V Eremin, E V Gurentsov, S A Musikhin, “Synthesis of binary iron–carbon nanoparticles by UV laser photolysis of Fe(CO)5with various hydrocarbons”, Mater. Res. Express, 3:10 (2016), 105041  crossref
    5. Ning Luo, Hongwen Jing, Zhanguo Ma, Yingchao Wang, Guilei Sun, Weidong Liu, “Growth characteristics of spherical titanium oxide nanoparticles during the rapid gaseous detonation reaction”, Particuology, 26 (2016), 102  crossref
    6. A V Eremin, E V Gurentsov, E Yu Mikheyeva, S A Musikhin, “Binary iron–carbon nanoparticle synthesis in photolysis of Fe(CO)5with methane and acetylene”, J. Phys.: Conf. Ser., 774 (2016), 012127  crossref
    7. N. Luo, H. Jing, Zh. Ma, W. Liu, L. Zhang, G. Sun, “Synthesis of polymorphic titanium oxide nanoparticles by a rapid gas-phase chemical reaction”, Mendeleev Commun., 26:2 (2016), 157–159  mathnet  crossref
    8. V. A. Polukhin, E. D. Kurbanova, “Dependence of the thermal stability of the interface states of d metals (Cu, Pd, Ti, Ni) and Al with graphene on the character of sorption and diffusion mobility in a contact zone”, Russ. J. Phys. Chem., 89:3 (2015), 531  crossref
    9. V. A. Polukhin, N. A. Vatolin, “Stability and thermal evolution of transition metal and silicon clusters”, Russian Chem. Reviews, 84:5 (2015), 498–539  mathnet  mathnet  crossref  isi  scopus
    10. Luo Ning, Jing Hongwen, Ma Zhanguo, Yu Liyuan, “Synthesis of nanoscale high purity rutile titania by a rapid gas-phase chemical reaction”, Materials Letters, 137 (2014), 164  crossref
    11. V. A. Polukhin, E. D. Kurbanova, A. E. Galashev, “Classification of functional d-metal/graphene interfaces according to a sorption mechanism and the resistance to thermoactivated disordering and melting. MD simulation”, Russ. Metall., 2014:8 (2014), 633  crossref
    Citing articles in Google Scholar: Russian citations, English citations
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