Ting He
Binghamton University
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Publication
Featured researches published by Ting He.
Journal of Materials Chemistry | 2006
Jin Luo; Lingyan Wang; Derrick Mott; Peter N. Njoki; Nancy N. Kariuki; Chuan-Jian Zhong; Ting He
The ability to tailor the size and composition of metal particles at the nanoscale could lead to improved or new catalytic properties. This paper reports the results of an investigation of the preparation and the characterization of platinum–nickel–iron (PtNiFe) ternary alloy nanoparticles. The synthesis of monolayer-capped ternary PtNiFe nanoparticles involved controlling the ratios of metal precursors, capping agents, and reducing agents in a single organic phase. The average diameters of the resulting nanocrystalline cores were well controlled between 1.4 and 1.8 nm with high monodispersity (±0.2–0.4 nm). The catalysts were prepared by loading the as-synthesized PtNiFe nanoparticles onto a high surface area carbon support and subsequent thermal treatment optimized for achieving effective shell removal and alloy formation, as well as controllable size, composition and metal loading. The catalysts were characterized using TEM, DCP-AES, FTIR, TGA, and XRD techniques. The catalysts were also examined for their intrinsic kinetic activities for the electrochemical oxygen reduction reaction. It is shown that the ternary catalysts are highly active towards molecular oxygen electrocatalytic reduction. Implications of our findings for the exploration of the new nanostructured catalyst materials for applications in fuel cell catalysis are also discussed.
Journal of The Electrochemical Society | 2006
Ting He; E. Kreidler; L. Xiong; Jin Luo; Chuan-Jian Zhong
Improving efficiency and reducing overall cost are two key issues to the commercialization of fuel cell powered vehicles. Electrocatalysts play an important role, particularly in the cathode, where the oxygen reduction reaction is sluggish and the noble metal loading is relatively high. To discover less expensive and more active cathode catalysts, a novel combinatorial workflow has been developed to investigate alloy-based electrocatalysts. In addition to the discovery program, various synthesis technologies have been studied and developed to engineer nanoscale catalyst particles with controllable size, monodispersity, and microcom-position. The progress of these research activities is reported with particular attention focused on the activity-stability-composition relationship for a series of platinum-based metal alloys.
Advanced Materials | 2008
Jin Luo; Lingyan Wang; Derrick Mott; Peter N. Njoki; Yan Lin; Ting He; Zhichuan J. Xu; Bridgid N. Wanjana; I. Im S Lim; Chuan-Jian Zhong
Journal of Physical Chemistry C | 2011
Rameshwori Loukrakpam; Jin Luo; Ting He; Yongsheng Chen; Zhichuan J. Xu; Peter N. Njoki; Bridgid N. Wanjala; Bin Fang; Derrick Mott; Jun Yin; Jonathan Klar; Brian Powell; Chuan-Jian Zhong
Electrochimica Acta | 2006
Jin Luo; Nancy N. Kariuki; Li Han; Lingyan Wang; Chuan-Jian Zhong; Ting He
Chemistry of Materials | 2005
Jin Luo; Li Han; Nancy N. Kariuki; Lingyan Wang; Derrick Mott; Chuan-Jian Zhong; Ting He
Archive | 2004
Ting He; Chuan-Jian Zhong; Jin Luo; Mathew M. Maye; Li Han; Nancy N. Kariuki; Lingyan Wang
Archive | 2004
Chuan-Jian Zhong; Jin Luo; Mathew M. Maye; Li Han; Nancy N. Kariuki; Ting He
Archive | 2009
Chuan-Jian Zhong; Jin Luo; Zhichaun Xu; Ting He
ChemInform | 2011
Chuan-Jian Zhong; Jin Luo; Ting He; Derrick Mott; Peter N. Njoki; Lingyan Wang