Pengpeng Lv
University of Science and Technology Beijing
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Publication
Featured researches published by Pengpeng Lv.
ACS Nano | 2016
Yongqiang Teng; Hailei Zhao; Zijia Zhang; Zhaolin Li; Qing Xia; Yang Zhang; Lina Zhao; Xuefei Du; Zhihong Du; Pengpeng Lv; Konrad Świerczek
A designed nanostructure with MoS2 nanosheets (NSs) perpendicularly grown on graphene sheets (MoS2/G) is achieved by a facile and scalable hydrothermal method, which involves adsorption of Mo7O24(6-) on a graphene oxide (GO) surface, due to the electrostatic attraction, followed by in situ growth of MoS2. These results give an explicit proof that the presence of oxygen-containing groups and pH of the solution are crucial factors enabling formation of a lamellar structure with MoS2 NSs uniformly decorated on graphene sheets. The direct coupling of edge Mo of MoS2 with the oxygen from functional groups on GO (C-O-Mo bond) is proposed. The interfacial interaction of the C-O-Mo bonds can enhance electron transport rate and structural stability of the MoS2/G electrode, which is beneficial for the improvement of rate performance and long cycle life. The graphene sheets improve the electrical conductivity of the composite and, at the same time, act not only as a substrate to disperse active MoS2 NSs homogeneously but also as a buffer to accommodate the volume changes during cycling. As an anode material for lithium-ion batteries, the manufactured MoS2/G electrode manifests a stable cycling performance (1077 mAh g(-1) at 100 mA g(-1) after 150 cycles), excellent rate capability, and a long cycle life (907 mAh g(-1) at 1000 mA g(-1) after 400 cycles).
ACS Applied Materials & Interfaces | 2015
Chunhui Gao; Hailei Zhao; Pengpeng Lv; Tianhou Zhang; Qing Xia; Jie Wang
Si-based electrodes for lithium ion batteries typically exhibit high specific capacity but poor cycling performance. A possible strategy to improve the cycling performance is to design a novel electrode nanostructure. Here we report the design and fabrication of Ni/Si-nanoparticles/graphite clothing hybrid electrodes with a sandwich structure. An efficient dip-coating of Si-NPs combined with carbon deposition was adopted to synthesize the unique architecture, where the Si-NPs are sandwiched between the Ni matrix and the graphite clothing. This material architecture offers many critical features that are desirable for high-performance Si-based electrodes, including efficient ion diffusion, high conductivity, and structure durability, thus ensuring the electrode with outstanding electrochemical performance (reversible capacity of 1800 mA h g(-1) at 2 A g(-1) after 500 cycles). In addition, the hybrid anode does not require any polymeric binder and conductive additives and holds great potential for application in Li-ion batteries.
Journal of Power Sources | 2013
Jie Wang; Hailei Zhao; Qian Yang; Chunmei Wang; Pengpeng Lv; Qing Xia
Journal of Power Sources | 2013
Pengpeng Lv; Hailei Zhao; Jing Wang; Xin Liu; Tianhou Zhang; Qing Xia
Journal of Power Sources | 2014
Zhipeng Zeng; Hailei Zhao; Jie Wang; Pengpeng Lv; Tianhou Zhang; Qing Xia
Journal of Power Sources | 2014
Pengpeng Lv; Hailei Zhao; Zhipeng Zeng; Jie Wang; Tianhou Zhang; Xingwang Li
Journal of Power Sources | 2015
Zhipeng Zeng; Hailei Zhao; Pengpeng Lv; Zijia Zhang; Jie Wang; Qing Xia
Applied Surface Science | 2015
Pengpeng Lv; Hailei Zhao; Zhipeng Zeng; Chunhui Gao; Xin Liu; Tianhou Zhang
Journal of Power Sources | 2013
Qing Xia; Hailei Zhao; Zhihong Du; Jie Wang; Tianhou Zhang; Jing Wang; Pengpeng Lv
Electrochimica Acta | 2015
Pengpeng Lv; Hailei Zhao; Chunhui Gao; Tianhou Zhang; Xin Liu