Yuxuan Li
Lanzhou University
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by Yuxuan Li.
ACS Nano | 2017
Jie Yin; Yuxuan Li; Fan Lv; Qiaohui Fan; Yong-Qing Zhao; Qiaolan Zhang; Wei Wang; Fangyi Cheng; Pinxian Xi; Shaojun Guo
The development of highly efficient bifunctional catalysts for oxygen evolution reaction (OER) and oxygen reduction reaction (ORR) is crucial for improving the efficiency of the Zn-air battery. Herein, we report porous NiO/CoN interface nanowire arrays (PINWs) with both oxygen vacancies and a strongly interconnected nanointerface between NiO and CoN domains for promoting the electrocatalytic performance and stability for OER and ORR. Extended X-ray absorption fine structure spectroscopy, electron spin resonance, and high-resolution transmission electron microscopy investigations demonstrate that the decrease of the coordination number for cobalt, the enhanced oxygen vacancies on the NiO/CoN nanointerface, and strongly coupled nanointerface between NiO and CoN domains are responsible for the good bifunctional electrocatalytic performance of NiO/CoN PINWs. The primary Zn-air batteries, using NiO/CoN PINWs as an air-cathode, display an open-circuit potential of 1.46 V, a high power density of 79.6 mW cm-2, and an energy density of 945 Wh kg-1. The three-series solid batteries fabricated by NiO/CoN PINWs can support a timer to work for more than 12 h. This work demonstrates the importance of interface coupling and oxygen vacancies in the development of high-performance Zn-air batteries.
Advanced Materials | 2017
Jie Yin; Yuxuan Li; Fan Lv; Min Lu; Ke Sun; Wei Wang; Lei Wang; Fangyi Cheng; Yefei Li; Pinxian Xi; Shaojun Guo
The development of highly active and stable oxygen evolution reaction (OER) electrocatalysts is crucial for improving the efficiency of water splitting and metal-air battery devices. Herein, an efficient strategy is demonstrated for making the oxygen vacancies dominated cobalt-nickel sulfide interface porous nanowires (NiS2 /CoS2 -O NWs) for boosting OER catalysis through in situ electrochemical reaction of NiS2 /CoS2 interface NWs. Because of the abundant oxygen vacancies and interface porous nanowires structure, they can catalyze the OER efficiently with a low overpotential of 235 mV at j = 10 mA cm-2 and remarkable long-term stability in 1.0 m KOH. The home-made rechargeable portable Zn-air batteries by using NiS2 /CoS2 -O NWs as the air-cathode display a very high open-circuit voltage of 1.49 V, which can maintain for more than 30 h. Most importantly, a highly efficient self-driven water splitting device is designed with NiS2 /CoS2 -O NWs as both anode and cathode, powered by two-series-connected NiS2 /CoS2 -O NWs-based portable Zn-air batteries. The present work opens a new way for designing oxygen vacancies dominated interface nanowires as highly efficient multifunctional electrocatalysts for electrochemical reactions and renewable energy devices.
Journal of the American Chemical Society | 2016
Jie Yin; Qiaohui Fan; Yuxuan Li; Fangyi Cheng; Panpan Zhou; Pinxian Xi; Shouheng Sun
Advanced Functional Materials | 2017
Li An; Yuxuan Li; Mingchuan Luo; Jie Yin; Yong-Qing Zhao; Cailing Xu; Fangyi Cheng; Ying Yang; Pinxian Xi; Shaojun Guo
Small | 2018
Yuxuan Li; Jie Yin; Li An; Min Lu; Ke Sun; Yong-Qin Zhao; Daqiang Gao; Fangyi Cheng; Pinxian Xi
Nanoscale | 2017
Yuxuan Li; Yu Wang; Brian Pattengale; Jie Yin; Li An; Fangyi Cheng; Yafei Li; Jier Huang; Pinxian Xi
Nuclear Instruments & Methods in Physics Research Section B-beam Interactions With Materials and Atoms | 2014
Chaoliang Xu; X.-Y. Liu; Feng Gao; Yuxuan Li; Y.Q. Wang
Nuclear Instruments & Methods in Physics Research Section B-beam Interactions With Materials and Atoms | 2015
D.Y. Yang; C.P. Xu; Engang Fu; J. Wen; C.G. Liu; K.Q. Zhang; Y.Q. Wang; Yuxuan Li
Computational Materials Science | 2016
C.G. Liu; Lulu Chen; D.Y. Yang; J. Wen; L.Y. Dong; Yuxuan Li
Nanoscale | 2018
Yuxuan Li; Jie Yin; Li An; Min Lu; Ke Sun; Yong-Qing Zhao; Fangyi Cheng; Pinxian Xi