Sheng Sui
Shanghai Jiao Tong University
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Publication
Featured researches published by Sheng Sui.
Journal of Energy Chemistry | 2013
Sheng Sui; Xiaolong Zhuo; Kaihua Su; Xianyong Yao; Junliang Zhang; Shangfeng Du; Kevin Kendall
An extensive study has been conducted on the proton exchange membrane fuel cells (PEMFCs) with reducing Pt loading. This is commonly achieved by developing methods to increase the utilization of the platinum in the catalyst layer of the electrodes. In this paper, a novel process of the catalyst layers was introduced and investigated. A mixture of carbon powder and Nafion solution was sprayed on the glassy carbon electrode (GCE) to form a thin carbon layer. Then Pt particles were deposited on the surface by reducing hexachloroplatinic (IV) acid hexahydrate with methanoic acid. SEM images showed a continuous Pt gradient profile among the thickness direction of the catalytic layer by the novel method. The Pt nanowires grown are in the size of 3 nm (diameter)×10 nm (length) by high solution TEM image. The novel catalyst layer was characterized by cyclic voltammetry (CV) and scanning electron microscope (SEM) as compared with commercial Pt/C black and Pt catalyst layer obtained from sputtering. The results showed that the platinum nanoparticles deposited on the carbon powder were highly utilized as they directly faced the gas diffusion layer and offered easy access to reactants (oxygen or hydrogen).
Journal of Energy Chemistry | 2015
Zhaoxu Wei; An He; Kaihua Su; Sheng Sui
Abstract High performance cathode for polymer electrolyte membrane fuel cell was prepared by depositing Pt nanowires in a carbon matrix coated on a substrate, and using decal transfer method to fabricate the membrane electrode assembly. The effects of carbon and ionomer contents on the electrode micro-structure and fuel cell performance are investigated by physical characterization and single cell testing. The Pt nanowires are gradient distributed across the cathode thickness, and more Pt exists near the membrane. Both the carbon and ionomer contents can affect the Pt nanowires distribution and aggregation. In addition, the carbon loading dominates the transport distance of gas and proton, and the ionomer content affects the triple phase boundaries and porosity in the cathode. The optimal structure of Pt nanowire cathode is obtained at 0.10 mg·cm –2 carbon loading and 10 wt% ionomer.
Renewable Energy | 2009
Chun-hua Li; Xin-Jian Zhu; Guang-Yi Cao; Sheng Sui; Mingruo Hu
International Journal of Hydrogen Energy | 2009
Lirong Ma; Sheng Sui; Yuchun Zhai
Journal of Power Sources | 2008
Chun-hua Li; Xin-Jian Zhu; Guang-Yi Cao; Sheng Sui; Mingruo Hu
Journal of Power Sources | 2011
Sheng Sui; Lirong Ma; Yuchun Zhai
International Journal of Hydrogen Energy | 2006
Mingruo Hu; Sheng Sui; Xinjian Zhu; Qingchun Yu; Guangyi Cao; Xueying Hong; Hengyong Tu
International Journal of Hydrogen Energy | 2013
Xianyong Yao; Kaihua Su; Sheng Sui; Liwei Mao; An He; Junliang Zhang; Shangfeng Du
International Journal of Hydrogen Energy | 2015
Zhaoxu Wei; Kaihua Su; Sheng Sui; An He; Shangfeng Du
International Journal of Hydrogen Energy | 2013
Xiaolong Zhuo; Sheng Sui; Junliang Zhang