| Literature DB >> 26732276 |
Jialiang Li1, Xinning Fu2, Zhou Mao3, Yushi Yang4, Tong Qiu5, Qingzhi Wu6.
Abstract
A series of PtM (M=Co, Ni)/reduced graphene oxide (rG-O) nanocomposites were successfully synthesized through a facile hydrothermal method. The as-synthesized nanocomposites were characterized using transmission electron microscopy and high-resolution transmission electron microscopy, X-ray diffraction, inductively coupled plasma-atomic emission spectrometer, and X-ray photoelectron spectroscopy. The electrochemical performance and oxygen reduction reaction (ORR) activity of PtM/rG-O nanocomposites were evaluated using cyclic voltammetry and the rotating disk electrode method. The results show that the addition of the reductant (1,2-hexadecanediol, HAD) in the reaction system slightly improved the ORR activity of PtM/rG-O nanocomposites with a negligible influence on the size and morphology of alloy NPs. Furthermore, PtNi/rG-O nanocomposites displayed the higher electrochemical stability than PtCo/rG-O nanocomposites. These results provide a facile strategy for the synthesis of Pt-based alloy NPs/rG-O nanocomposites for applications in catalysis and energy-related processes.Entities:
Keywords: Oxygen reduction reaction; Pt-based alloy; Reduced graphene oxide
Year: 2016 PMID: 26732276 PMCID: PMC4701711 DOI: 10.1186/s11671-015-1208-5
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1TEM and HRTEM images of PtCo/rG-O nanocomposites synthesized in the absence and presence of HAD. a–d PtCo/rG-O; e–h PtCo/rG-O-HAD
Fig. 2TEM and HRTEM images of PtNi/rG-O nanocomposites synthesized in the absence and presence of HAD. a–d PtNi/rG-O; e–h PtNi/rG-O-HAD
Fig. 3XRD patterns of the as-synthesized PtM/rG-O nanocomposites. a PtCo/rG-O; b PtCo/rG-O-HAD; c PtNi/rG-O; d PtNi/rG-O-HAD
Fig. 4Raman spectra of PtM/rG-O nanocomposites. a GO; b PtCo/rG-O; c PtCo/rG-O-HAD; d PtNi/rG-O; e PtNi/rG-O-HAD
Fig. 5XPS spectra of C 1s, Pt 4f, Co 2p, and Ni 2p in PtM/rG-O-HAD nanocomposites
Fig. 6Electrochemical performance of PtM/rG-O nanocomposites. a CV curves of PtM/rG-O nanocomposites measured in 0.1 M HClO4 solution at a scan rate of 50 mV s−1 at room temperature; b ORR activities of PtM/rG-O nanocomposites measured at a speed of 1600 rpm in O2-saturated 0.1 M HClO4 solution at room temperature. The inset in a and b is the ECSA value and mass activity (E 1/2 = 0.5) of PtM/rG-O nanocomposites, respectively
Fig. 7Electrochemical stability of PtM/rG-O nanocomposites after 6000 cycles