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Xingxing Jiang

National Research University Higher School of Economics

ORCID: 0000-0001-8815-3914

Publishes on Electrocatalysts for Energy Conversion, Perovskite Materials and Applications, Advanced battery technologies research. 177 papers and 5.6k citations.

177Publications
5.6kTotal Citations

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Top publicationsby citations

Engineering NiS/Ni<sub>2</sub>P Heterostructures for Efficient Electrocatalytic Water Splitting
Xin Xiao, Dekang Huang, Yongqing Fu et al.|ACS Applied Materials & Interfaces|2018
Cited by 370

Developing high-active and low-cost bifunctional materials for catalyzing the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) holds a pivotal role in water splitting. Therefore, we present a new strategy to form NiS/Ni2P heterostructures. The as-obtained NiS/Ni2P/carbon cloth (CC) requires overpotentials of 111 mV for the HER and 265 mV for the OER to reach a current density of 20 mA cm–2, outperforming their counterparts such as NiS and Ni2P under the same conditions. Additionally, the NiS/Ni2P/CC electrode requires a 1.67 V cell voltage to deliver 10 mA cm–2 in a two-electrode electrolysis system, which is comparable to the cell using the benchmark Pt/C||RuO2 electrode. Detailed characterizations reveal that strong electronic interactions between NiS and Ni2P, abundant active sites, and smaller charge-transfer resistance contribute to the improved HER and OER activity.

Electronic modulation of transition metal phosphide<i>via</i>doping as efficient and pH-universal electrocatalysts for hydrogen evolution reaction
Xin Xiao, Leiming Tao, Man Li et al.|Chemical Science|2018
Cited by 196Open Access

media, respectively. Meanwhile, the V-CoP/CC electrode exhibits a small Tafel slope and superior long-term stability over a wide pH range. Detailed characterizations reveal that the modulation of the electronic structure contributes to the superior HER performance of V-CoP/CC. We believe that doping engineering opens up new opportunities to improve the HER catalytic activity of transition metal phosphides through regulating their physicochemical and electrochemical properties.