Preparation of rhodium nano-particles using microwaves

被引:5
|
作者
Ugalde, M. [1 ]
Chavira, E. [2 ]
Figueroa, I. A. [2 ]
Quintanar, C. [3 ]
Espinosa-Magana, F. [1 ]
Zaragoza-Contreras, E. A. [1 ]
Ochoa-Lara, M. T. [1 ]
机构
[1] Ctr Invest Mat Avanzados SC, Chihuahua 31109, CHIH, Mexico
[2] Univ Nacl Autonoma Mexico, Inst Invest Mat, Mexico City 04510, DF, Mexico
[3] Univ Nacl Autonoma Mexico, Fac Ciencias, Mexico City 04510, DF, Mexico
关键词
Sol-gel method; Rhodium nanoparticles; SEM; HR-TEM; TGA; DRX; IONIC LIQUIDS; NANOPARTICLES; HYDROGENATION; PD; DISPERSIONS; CATALYSTS; BENZENE; RH;
D O I
10.1007/s10971-012-2937-x
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
A new process for synthesizing rhodium (Rh) nano-particles by sol-gel processing using acrylamide and microwaves is reported and discussed. Three heat treatments were applied: the first required the use of microwaves, with an inert gas (Ar) flux, to decompose the organic material; the second and third treatments, respectively, were carried out into a furnace in air at temperatures of 600 and 1,000 A degrees C. This procedure ensured the removal of by-products produced during the sol-gel reaction. The synthesis of a pure nano-Rh was confirmed by X-ray diffraction (XRD), where the presence of a cubic structure was observed (PDF file 089-7383), and EDX. Thermogravimetric analysis (TGA), in addition to determining the decomposition temperatures, enabled the heat treatment conditions needed to obtain pure nano- Rh to be elucidated. Furthermore, the morphology was observed with a scanning electron microscope (SEM). After the heat treatment at 1,000 A degrees C, SEM images showed grain sizes between 3 and 200 nm. High-resolution transmission electron microscopy (HR-TEM) confirmed the production of those nano- particles, and the beginning of the formation of clusters as a consequence of the high temperature applied to the system.
引用
收藏
页码:311 / 317
页数:7
相关论文
共 50 条
  • [1] Preparation of rhodium nano-particles using microwaves
    M. Ugalde
    E. Chavira
    I. A. Figueroa
    C. Quintanar
    F. Espinosa-Magaña
    E. A. Zaragoza-Contreras
    M. T. Ochoa-Lara
    Journal of Sol-Gel Science and Technology, 2013, 65 : 311 - 317
  • [2] A review on Preparation of Silver Nano-particles
    Haider, Adawiya J.
    Haider, Mohammad J.
    Mehde, Mohammad S.
    TECHNOLOGIES AND MATERIALS FOR RENEWABLE ENERGY, ENVIRONMENT AND SUSTAINABILITY, 2018, 1968
  • [3] Preparation and characterization of CuInSe2 nano-particles
    Lu, Wei-Lun
    Fu, Yaw-Shyan
    Tseng, Bae-Heng
    JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 2008, 69 (2-3) : 637 - 640
  • [4] Electrochemical Preparation of Cobalt Nano-particles in an Ionic Liquid
    Katayama, Yasushi
    Fukui, Ryuta
    Miura, Takashi
    ELECTROCHEMISTRY, 2013, 81 (07) : 532 - 534
  • [5] Preparation of zinc oxide nano-particles coated with aluminum
    Yuan, FL
    Huang, SL
    Li, JL
    JOURNAL OF MATERIALS SCIENCE LETTERS, 2001, 20 (16) : 1549 - 1551
  • [6] Preparation and characterization of SnO2 nano-particles
    Sun, M
    Yu, L
    Hao, ZF
    Sun, J
    CHINESE JOURNAL OF INORGANIC CHEMISTRY, 2005, 21 (06) : 925 - 928
  • [7] Some insights in the sonochemical preparation of cobalt nano-particles
    Erasmus, Willem J.
    van Steen, Eric
    ULTRASONICS SONOCHEMISTRY, 2007, 14 (06) : 732 - 738
  • [8] Preparation and application of polymer nano-fiber doped with nano-particles
    Li, Jin
    Li, Hanyang
    Hu, Haifeng
    Zhao, Yong
    Wang, Qi
    OPTICAL MATERIALS, 2015, 40 : 49 - 56
  • [9] Cardiotoxicity of nano-particles
    Bostan, Hasan Badie
    Rezaee, Ramin
    Valokala, Mahmoud Gorji
    Tsarouhas, Konstantinos
    Golokhvast, Kirill
    Tsatsakis, Aristidis M.
    Karimi, Gholamreza
    LIFE SCIENCES, 2016, 165 : 91 - 99
  • [10] Preparation of electro-catalytic Pt nano-particles using gaseous reducing agents
    Skofic, Irena Kozjek
    Matoh, Lev
    Bukovec, Peter
    MONATSHEFTE FUR CHEMIE, 2014, 145 (12): : 1873 - 1878