Facile radiolytic synthesis of ruthenium nanoparticles on graphene oxide and carbon nanotubes

被引:211
作者
Rojas, J. V. [1 ]
Toro-Gonzalez, M. [1 ]
Molina-Higgins, M. C. [1 ]
Castano, C. E. [2 ]
机构
[1] Virginia Commonwealth Univ, Mech & Nucl Engn Dept, 401 West Main St, Richmond, VA 23284 USA
[2] Virginia Commonwealth Univ, Nanomat Core Characterizat Facil, Chem & Life Sci Engn Dept, 601 West Main St, Richmond, VA 23284 USA
来源
MATERIALS SCIENCE AND ENGINEERING B-ADVANCED FUNCTIONAL SOLID-STATE MATERIALS | 2016年 / 205卷
关键词
Carbon nanotubes; Graphene oxide; Nanoparticles; Ruthenium; Radiation chemistry; Radiolysis; Gamma irradiation; LIQUID-PHASE HYDROGENATION; RU NANOPARTICLES; PT-RU; SURFACE; OXIDATION; NANOCLUSTERS; CHEMISTRY; CATALYST;
D O I
10.1016/j.mseb.2015.12.005
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Ruthenium nanoparticles on pristine (MWCNT) and functionalized carbon nanotubes (f-MWCNT), and graphene oxide have been prepared through a facile, single step radiolytic method at room temperature, and ambient pressure. This synthesis process relies on the interaction of high energy gamma rays from a Co-60 source with the water in the aqueous solutions containing the Ru precursor, leading to the generation of highly reducing species that further reduce the Ru metal ions to zero valence state. Transmission electron microscopy and X-Ray diffraction revealed that the nanoparticles were homogeneously distributed on the surface of the supports with an average size of similar to 2.5 nm. X-ray Photoelectron spectroscopy analysis showed that the interaction of the Ru nanoparticles with the supports occurred through oxygenated functionalities, creating metal-oxygen bonds. This method demonstrates to be a simple and clean approach to produce well dispersed nanoparticles on the aforementioned supports without the need of any hazardous chemical. (C) 2015 Elsevier B.V. All rights reserved.
引用
收藏
页码:28 / 35
页数:8
相关论文
共 52 条
[41]   Role of hydrous ruthenium oxide in Pt-Ru direct methanol fuel cell anode electrocatalysts: The importance of mixed electron/proton conductivity [J].
Rolison, DR ;
Hagans, PL ;
Swider, KE ;
Long, JW .
LANGMUIR, 1999, 15 (03) :774-779
[42]   Synthesis and characterization of carbon-supported Pt-Ru-WOx catalysts by spectroscopic and diffraction methods [J].
Roth, C ;
Goetz, M ;
Fuess, H .
JOURNAL OF APPLIED ELECTROCHEMISTRY, 2001, 31 (07) :793-798
[43]   Electrocatalytic oxidation of ethylene glycol on Pt and Pt-Ru nanoparticles modified multi-walled carbon nanotubes [J].
Selvaraj, Vaithilingam ;
Vinoba, Mari ;
Alagar, Muthukaruppan .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2008, 322 (02) :537-544
[44]   AN ESCA STUDY OF THE INTERACTION OF OXYGEN WITH THE SURFACE OF RUTHENIUM [J].
SHEN, JY ;
ADNOT, A ;
KALIAGUINE, S .
APPLIED SURFACE SCIENCE, 1991, 51 (1-2) :47-60
[45]   Irradiation preparation of reduced graphene oxide/carbon nanotube composites for high-performance supercapacitors [J].
Sun, Minqiang ;
Wang, Gengchao ;
Li, Xingwei ;
Li, Chunzhong .
JOURNAL OF POWER SOURCES, 2014, 245 :436-444
[46]   Fabrication of ruthenium-carbon nanotube nanocomposites in supercritical water [J].
Sun, ZY ;
Liu, ZM ;
Han, BX ;
Wang, Y ;
Du, JM ;
Xie, ZL ;
Han, GJ .
ADVANCED MATERIALS, 2005, 17 (07) :928-+
[47]  
Upare P.P., 2015, CATAL TODAY
[48]   Ruthenium nanoparticles loaded on multiwalled carbon nanotubes for liquid-phase hydrogenation of fine chemicals: An exploration of confinement effect [J].
Wang, Yong ;
Rong, Zeming ;
Wang, Yu ;
Zhang, Peng ;
Wang, Yue ;
Qu, Jingping .
JOURNAL OF CATALYSIS, 2015, 329 :95-106
[49]   Metal nanopartictes and related materials supported on carbon nanotubes: Methods and applications [J].
Wildgoose, GG ;
Banks, CE ;
Compton, RG .
SMALL, 2006, 2 (02) :182-193
[50]   Deposition of platinum-ruthenium nano-particles on multi-walled carbon nano-tubes studied by gamma-irradiation [J].
Zhang, Xinyun ;
Ye, Yin ;
Wang, Hengdong ;
Yao, Side .
RADIATION PHYSICS AND CHEMISTRY, 2010, 79 (10) :1058-1062