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Dive into the research topics where Xianxi Liu is active.

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Featured researches published by Xianxi Liu.


Journal of Porous Materials | 2016

In situ Ti3+-doped TiO2 nanotubes anode for lithium ion battery

Jixiang Duan; Hongying Hou; Xianxi Liu; Cuixia Yan; Song Liu; Ruijin Meng; Zhenliang Hao; Yuan Yao; Qishu Liao

In order to improve the electrical conductivity and electrochemical performances, three-dimensional oriented noncrystalline TiO2 nanotube arrays (TiO2NT) were modified with Ti3+ via one-step in situ electrochemical self-doping. The as-synthesized Ti3+-doped TiO2NT (Ti3+/TiO2NT) electrode was investigated in terms of XPS, SEM, EDX, galvanostatic charge/discharge, cycle stability, rate performance, cyclic voltammetry (CV) and AC impedance. As expected, Ti3+/TiO2NT electrode displayed higher discharge capacity, rate performance, cycle stability and Li+ diffusion coefficient than the bare one, possibly due to improved electrical conductivity.


Journal of Porous Materials | 2016

Binder-free combination of graphene nanosheets with TiO2 nanotube arrays for lithium ion battery anode

Ruijin Meng; Hongying Hou; Xianxi Liu; Jixiang Duan; Song Liu

Binder-free combination of graphene nanosheets with oriented TiO2 nanotube arrays was designed and achieved via one-step facile electrodeposition. The structure and morphology of as-prepared composite graphene nanosheets/TiO2 nanotube arrays were studied in terms of SEM, FESEM, EDX, TEM, Raman and FTIR. Furthermore, the corresponding electrochemical performances were evaluated in terms of galvanostatic charge/discharge, cycle stability and AC impedance. As expected, the composite graphene nanosheets/TiO2 nanotube arrays displayed higher discharge capacity, cycle stability and Li+ diffusion coefficient than bare TiO2 nanotube arrays. High Li-storage activity, superior conductivity and large surface area of graphene nanosheets should be responsible for improved electrochemical performances.


RSC Advances | 2016

Binder-free integration of insoluble cubic CuCl nanoparticles with a homologous Cu substrate for lithium ion batteries

Song Liu; Hongying Hou; Wen Hu; Xianxi Liu; Jixiang Duan; Ruijin Meng

Binder-free integration of a novel insoluble cubic cuprous chloride (CuCl) nanoparticle anode material with homologous Cu foil was designed and achieved via facile in situ electrochemical self-assembly for the first time. The integrated CuCl/Cu electrode for lithium ion batteries was studied in terms of SEM, EDX, XRD, galvanostatic charge/discharge, cycle stability, rate performance, cyclic voltammograms (CV) and AC impedance. As expected, insoluble cubic CuCl nanoparticles did in situ grow and tightly combine with the surface of Cu foil, and the resultant CuCl/Cu electrode delivered a reversible discharge capacity of 250.6 mA h g−1 after 300 cycles at 2C, indicating satisfactory cyclic stability. In addition, the corresponding Li+ diffusion coefficient was calculated to be 1.8 × 10−11 cm2 s−1, higher than that of the MnO anode material in literature. Binder-free integration of homologous materials via self-assembly can not only ensure the tight combination of insoluble CuCl nanoparticles with Cu foil, but also avoid negative effects due to the polymer binder on electrochemical performance.


Ionics | 2015

Sulfonated graphene oxide with improved ionic performances

Hongying Hou; Xuehan Hu; Xianxi Liu; Wen Hu; Ruijin Meng; Lei Li

Graphene oxide is well known as a new kind of functional materials because of its super-high specie surface area, mechanical strength, as well as excellent amphipathicity. In this article, graphene oxide was further sulfonated via substitution reaction with diazo salt of sulfanilic in order to endow graphene oxide with better ion exchange capacity and proton conductivity. The microstructure and morphology of the obtained sulfonated graphene oxide were characterized by X-ray diffraction (XRD), Raman spectra, and TEM, while the sulfonation of graphene oxide was confirmed by energy-dispersive X-ray (EDX) and Fourier transform infrared spectroscopy (FTIR) spectra. As expected, ion exchange capacity and proton conductivity of sulfonated graphene oxide increased by about 0.589 and 33.6 times than those of graphene oxide, respectively.


Journal of Hazardous Materials | 2017

Recycled hierarchical tripod-like CuCl from Cu-PCB waste etchant for lithium ion battery anode.

Song Liu; Hongying Hou; Xianxi Liu; Jixiang Duan; Yuan Yao; Qishu Liao; Jing Li; Yunzhen Yang

Hierarchical CuCl with high economic value added (EVA) was successfully recycled with 85% recovery from the acid Cu printed circuit board (Cu-PCB) waste etchant via facile liquid chemical reduction. The micro-structure and morphology of the recycled hierarchical CuCl were systematically characterized in terms of scanning electron microscopy (SEM), energy dispersive X-ray spectroscopy (EDX), X-ray diffraction (XRD), transmission electron microscopy (TEM) and Brunauer-Emmett-Teller (BET). Furthermore, the corresponding electrochemical performances as lithium ion battery (LIB) anode were also investigated in terms of galvanostatic charge/discharge, cyclic voltammetry (CV) and AC impedance. As expected, the recycled CuCl displayed a hierarchical tripod-like structure and large specific surface area of 21.2m2/g. As the anode in LIB, the reversible discharge capacity was about 201.4 mAh/g even after 100 cycles, implying the satisfactory cycle performance. Clearly, the satisfactory results may open a new avenue to develop the sustainable industry, which is very important in terms of both the resource recovery and the environmental protection.


Ionics | 2016

Binder-free combination of amorphous TiO2 nanotube arrays with highly conductive Cu bridges for lithium ion battery anode

Ruijin Meng; Hongying Hou; Xianxi Liu; Jixiang Duan; Song Liu

Binder-free combination of highly conductive Cu bridges with amorphous TiO2 nanotube arrays for lithium ion battery anode were designed and achieved via one-step facile electrodeposition. The obtained composite Cu/TiO2 nanotubes electrode was studied in terms of XRD, SEM, EDX, galvanostatic charge/discharge, cycle stability, rate performance, and AC impedance. As expected, the composite electrode delivered higher discharge capacity, rate performance, and cycle stability than the bare one, possibly due to improved electrical conductivity and the synergy effect between conductive Cu bridges and amorphous TiO2 nanotube arrays.


Science of The Total Environment | 2018

Reutilization of the expired tetracycline for lithium ion battery anode.

Hongying Hou; Zhipeng Dai; Xianxi Liu; Yuan Yao; Qishu Liao; Chengyi Yu; Dongdong Li

Waste antibiotics into the natural environment are the large challenges to the environmental protection and the human health, and the unreasonable disposal of the expired antibiotics is a major pollution source. Herein, to achieve the innocent treatment and the resource recovery, the expired tetracycline was tried to be reutilized as the electrode active material in lithium ion battery (LIB) for the first time. The micro-structure and element component of the expired tetracycline were characterized by scanning electron microscope (SEM), energy dispersive X-ray spectroscopy (EDX), X-ray photoelectron spectroscopy (XPS) and Fourier transform infrared spectroscopy (FTIR). Furthermore, the corresponding electrochemical performances were also investigated by galvanostatic charge/discharge and cyclic voltammetry (CV). To be satisfactory, the expired-tetracycline-based electrode delivered the initial specific discharge capacity of 371.6mAh/g and the reversible specific capacity of 304.1mAh/g after 200cycles. The decent results will not only offer an effective strategy to recycle the expired tetracycline, but also shed a new light on the cyclic economy and the sustainable development.


Ionics | 2017

Sulfonated poly(phenylene oxide)/Ti3+/TiO2 nanotube arrays membrane/electrode with high performances for lithium ion battery

Jixiang Duan; Hongying Hou; Xianxi Liu; Qishu Liao; Song Liu; Yuan Yao

Sulfonated poly(phenylene oxide) (SPPO) film was electrodeposited on Ti3+-doped TiO2 nanotube arrays (Ti3+/TiO2NT) electrode via the electropolymerization of sulfonated phenol. The as-synthesized SPPO/Ti3+/TiO2NT membrane/electrode was investigated in terms of SEM, FESEM, EDX, FTIR, XPS, galvanostatic charge/discharge, and cycle voltammetry (CV). As expected, the porous SPPO film did form on the surface of Ti3+/TiO2NT electrode; furthermore, the resultant SPPO/Ti3+/TiO2NT membrane/electrode delivered higher electrochemical performances than PPO/Ti3+/TiO2NT, mainly attributed to the contributions of the ionic conductivity induced by –SO3H groups within SPPO.


Ceramics International | 2015

Reassessment of the roles of Ag in TiO2 nanotubes anode material for lithium ion battery

Ruijin Meng; Hongying Hou; Xianxi Liu; Wen Hu; Jixiang Duan; Song Liu


International Journal of Hydrogen Energy | 2013

Thermal crosslinked and nanodiamond reinforced SPEEK composite membrane for PEMFC

Hongying Hou; Riccardo Polini; Maria Luisa Di Vona; Xianxi Liu; E. Sgreccia; Jean-François Chailan; Philippe Knauth

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Hongying Hou

Kunming University of Science and Technology

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Jixiang Duan

Kunming University of Science and Technology

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Song Liu

Kunming University of Science and Technology

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Yuan Yao

Kunming University of Science and Technology

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Qishu Liao

Kunming University of Science and Technology

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Ruijin Meng

Kunming University of Science and Technology

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Chengyi Yu

Kunming University of Science and Technology

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Dongdong Li

Kunming University of Science and Technology

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Zhipeng Dai

Kunming University of Science and Technology

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Wen Hu

Kunming University of Science and Technology

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