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Featured researches published by Binbin Fan.


RSC Advances | 2016

Facile synthesis of 3D plum candy-like ZnCo2O4 microspheres as a high-performance anode for lithium ion batteries

Binbin Fan; Xiaohua Chen; Aiping Hu; Qunli Tang; Haining Fan; Zheng Liu; Kuikui Xiao

In this paper, 3D plum candy-like ZnCo2O4 microspheres (3D plum candy-like ZCO MSs) with nanoscale building blocks were synthesized by an ultrasonic spray pyrolysis technology and evaluated as anode materials for high-performance lithium ion batteries (LIBs). The uniform ZnCo2O4 microspheres exhibit plum candy-like architectures and are built from a large amount of interconnected nanoparticles with a diameter of approximately 38 nm. Owing to the unique hierarchical porous structure, the 3D plum candy-like ZCO MSs exhibit many advantageous properties such as their ability to facilitate the transport of Li+ and electrolytes by shortening the diffusion ways, to accommodate the mechanical stress and volume change associated with the Li+ insertion/extraction processes, and to improve the contact area between electrode and electrolyte, which are beneficial to improve the electrochemical performance. As a consequence, the ZnCo2O4 nanomaterials exhibit excellent cycling performance with a discharge capacity of 1030 mA h g−1 after 110 cycles at 200 mA g−1 and superior rate capability (769 mA h g−1 at 2000 mA g−1). In virtue of the simple synthesis method and excellent electrochemical performance, 3D porous ZCO MSs have huge potential as anode materials for the next-generation LIBs.


RSC Advances | 2016

Molybdenum disulfide nanosheet embedded three-dimensional vertically aligned carbon nanotube arrays for extremely-excellent cycling stability lithium-ion anodes

Haining Fan; Xiaohua Chen; Qunli Tang; Shanliang Chen; Binbin Fan; Aiping Hu; Shiying Zhang; Yanghua Li

Molybdenum disulfide (MoS2) nanosheets embedded in three-dimensional (3D) vertically aligned carbon nanotube arrays (VACNTs) have been fabricated via a simple nebulization-assisted hydrothermal method. The MoS2/VACNTs possess a highly ordered and uniformly oriented 3D structure with MoS2 nanosheets adhering strictly to the surface of VACNTs. When evaluated as lithium-ion anode materials, so-obtained MoS2/VACNTs composites containing 52 wt% MoS2 exhibit superb electrochemical performances, including high capacity (1078 mA h g−1 at 100 mA g−1 after 1st cycle), good rate capability (789 mA h g−1 at 2000 mA g−1 after 20 cycles), and extremely-excellent cycling stability, for the MoS2/VACNTs electrode can still deliver a discharge capacity of 512 mA h g−1 after 1000 cycles at 5000 mA g−1, compared with pristine MoS2 (negligible discharge capacity at the 70th cycle). Such high electrical properties can mainly be attributed to the unique well-directed pore-morphology which provides low-resistant shortest diffusion pathways upon the high-conductive VACNTs to accelerate ion/electron movement. Moreover, the elastic spare-space inside/outside VACNTs as a buffer factor effectively restrains large volumetric change from MoS2 during the charge/discharge process. It can be determined that such a structure is attractive to achieve extremely-excellent cycling stability lithium-ion anodes.


RSC Advances | 2016

Capacity-increasing robust porous SiO2/Si/graphene/C microspheres as an anode for Li-ion batteries

Jiande Wang; Xiaohua Chen; Xuelian Liu; Aiping Hu; Qunli Tang; Zheng Liu; Binbin Fan; Huaiyuan Chen; Yuxi Chen

Robust porous SiO2/Si/graphene/C microspheres have been successfully synthesized by a simple two-step process of ultrasonic spraying and partial magnesiothermic reduction. The 3-D porous microspheres consist of Si/SiO2 nanoparticles (around 5–10 nm) covered by a layer of carbon and connected by graphene. We explored the electrochemical properties of the porous microspheres as an anode for lithium ion batteries (LIBs). In SiO2/Si/graphene/C microspheres, numerous pores could leave enough room for volume expansion and contraction of silicon during lithiation and delithiation, and provide large space voids for electrolyte reserves. Meanwhile, graphene plays a role in reinforcing the porous structure. The prepared sample shows superior cyclability with a discharge capacity of 1104.9 mA h g−1 in the second cycle and 1141.6 mA h g−1 over 200 cycles at a current density of 0.1 mA cm−2. The capacity retention is more than 100%, making it very promising as a future LIBs anode.


ACS Applied Materials & Interfaces | 2018

Compact-Nanobox Engineering of Transition Metal Oxides with Enhanced Initial Coulombic Efficiency for Lithium-Ion Battery Anodes

Yanfei Zhu; Aiping Hu; Qunli Tang; Shiying Zhang; Weina Deng; Yanhua Li; Zheng Liu; Binbin Fan; Kuikui Xiao; Jilei Liu; Xiaohua Chen

A novel strategy is proposed to construct a compact-nanobox (CNB) structure composed of irregular nanograins (average diameter ≈ 10 nm), aiming to confine the electrode-electrolyte contact area and enhance initial Coulombic efficiency (ICE) of transition metal oxide (TMO) anodes. To demonstrate the validity of this attempt, CoO-CNB is taken as an example which is synthesized via a carbothermic reduction method. Benefiting from the compact configuration, electrolyte can only contact the outer surface of the nanobox, keeping the inner CoO nanograins untouched. Therefore, the solid electrolyte interphase (SEI) formation is reduced. Furthermore, the internal cavity leaves enough room for volume variation upon lithiation and delithiation, resulting in superior mechanical stability of the CNB structure and less generation of fresh SEI. Consequently, the SEI remains stable and spatially confined without degradation, and hence, the CoO-CNB electrode delivers an enhanced ICE of 82.2%, which is among the highest values reported for TMO-based anodes in lithium-ion batteries. In addition, the CoO-CNB electrode also demonstrates excellent cyclability with a reversible capacity of 811.6 mA h g-1 (90.4% capacity retention after 100 cycles). These findings open up a new way to design high-ICE electrodes and boost the practical application of TMO anodes.


Journal of Power Sources | 2016

Sulfur-impregnated 3D hierarchical porous nitrogen-doped aligned carbon nanotubes as high-performance cathode for lithium-sulfur batteries

Weina Deng; Aiping Hu; Xiaohua Chen; Shiying Zhang; Qunli Tang; Zheng Liu; Binbin Fan; Kuikui Xiao


Carbon | 2017

Nitrogen-doped worm-like graphitized hierarchical porous carbon designed for enhancing area-normalized capacitance of electrical double layer supercapacitors

Zheng Liu; Kuikui Xiao; Hui Guo; Xiaohua Ning; Aiping Hu; Qunli Tang; Binbin Fan; Yanfei Zhu; Xiaohua Chen


Materials Letters | 2013

A facile method to synthesize Fe3O4/graphene composites in normal pressure with high rate capacity and cycling stability

Aiping Hu; Xiaohua Chen; Yuanhong Tang; Lei Yang; Haihe Xiao; Binbin Fan


Chemistry-an Asian Journal | 2016

Dual-Confined Sulfur Nanoparticles Encapsulated in Hollow TiO2 Spheres Wrapped with Graphene for Lithium–Sulfur Batteries

Haining Fan; Qunli Tang; Xiaohua Chen; Binbin Fan; Shanliang Chen; Aiping Hu


Electrochimica Acta | 2016

Hierarchical Porous ZnMn2O4 Microspheres as a High-Performance Anode for Lithium-Ion Batteries

Binbin Fan; Aiping Hu; Xiaohua Chen; Shiying Zhang; Qunli Tang; Jiande Wang; Weina Deng; Zheng Liu; Kuikui Xiao


Journal of Power Sources | 2017

Potassium vapor assisted preparation of highly graphitized hierarchical porous carbon for high rate performance supercapacitors

Zheng Liu; Ying Zeng; Qunli Tang; Aiping Hu; Kuikui Xiao; Shiying Zhang; Weina Deng; Binbin Fan; Yanfei Zhu; Xiaohua Chen

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