Zhenyang Cai
Central South University
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Publication
Featured researches published by Zhenyang Cai.
Journal of Materials Chemistry | 2016
Sainan Liu; Zhenyang Cai; Jiang Zhou; Anqiang Pan; Shuquan Liang
Sodium-ion batteries (NIBs) and sodium-ion capacitors (NICs) are considered to be promising energy storage systems for applications in future hybrid electric vehicles (HEVs) and electric vehicles (EVs) because of the low cost and abundance of Na. Herein, NIBs and NICs based on nitrogen-doped TiO2 (referred to as N-TiO2) nanospheres as anode materials were analyzed. The N-TiO2 nanospheres exhibited a stable capacity of 162 mA h g−1 over 1000 cycles at 1 A g−1, as well as a superior rate performance in NIBs. In NICs, the N-TiO2//AC device displayed a high energy density of ∼80.3 W h kg−1, a high power density of ∼12 500 W kg−1, and excellent long-term cycling stability for up to 6500 cycles.
Journal of Materials Chemistry | 2017
Sainan Liu; Zhenyang Cai; Jiang Zhou; Mengnan Zhu; Anqiang Pan; Shuquan Liang
Due to limited Li resources, sodium-ion batteries (NIBs) have become promising candidates for application in large-scale energy storage systems, and the development of high-performance anode materials for NIBs has become particularly urgent. Moreover, sodium-ion capacitors (NICs), which combine the characteristics of batteries and capacitors, have attracted significant research interest due to their high energy and power density. Herein, we report the design of efficient hydrothermal routes for synthesizing interlaced Sb2O3 nanosheets and Sb2S3 micro-nanospheres, grown on carbon fiber cloth, referred to as SO/CFC and SS/CFC, respectively, which were then used as flexible electrodes for NIBs and NICs devices. For NIBs applications, the SO/CFC electrodes exhibit a high stable capacity of 514 mA h g−1 after 500 cycles at 0.5 A g−1. The SS/CFC electrodes also display a stable capacity of 736 mA h g−1 after 650 cycles at 0.5 A g−1 and the high-rate capability can reach a high current density of 15 A g−1. Importantly, the flexible NIC device based on SO/CFC or SS/CFC as the anode and carbon fibers as the cathode was demonstrated, which manifests high power density and energy density, as well as significantly superior cycle stability.
Journal of Materials Chemistry | 2016
Sainan Liu; Jiang Zhou; Zhenyang Cai; Guozhao Fang; Yangsheng Cai; Anqiang Pan; Shuquan Liang
Hybrid supercapacitors (HSCs), which are expected to possess the good characteristics of both lithium batteries and supercapacitors, have become a hot research topic in recent years for catering to the growing market for electric vehicles (EVs) and hybrid electric vehicles (HEVs). Herein, we demonstrate an advanced hybrid material construction by the orthorhombic Nb2O5 quantum dots embedded in nitrogen-doped porous carbon derived from ZIF-8 dodecahedrons, referred to as NQD–NC. Then the applications of this material in LIBs and HSCs are studied in-depth. The LIB test reveals that the novel Nb2O5-based material shows excellent high-rate capability and long-term cyclic stability. Importantly, by assembling a HSC device using a NQD–NC anode and a commercial activated carbon cathode with an organic electrolyte, the HSC shows superior electrochemical performance including ultra-high energy and power density (76.9 W h kg−1 and 11 250 W kg−1, respectively) and superior cyclic stability (capacity retention of ∼85% at 5 A g−1 after 4500 cycles in a voltage range of 0.5–3.0 V). The excellent electrochemical performance of the HSCs indicates combining the advantages of lithium-ion batteries and supercapacitors, which is promising for the next generation of energy storage systems.
Nanotechnology | 2016
Sainan Liu; Jiang Zhou; Zhenyang Cai; Guozhao Fang; Anqiang Pan; Shuquan Liang
We report the synthesis of three-dimensional (3D) urchin-like Nb2O5 microstructures by a facile hydrothermal approach with subsequent annealing treatment. As anode materials for lithium-ion batteries, the 3D urchin-like Nb2O5 microstructures exhibit superior electrochemical performance with excellent rate capability as well as long-term cycling stability. The electrode delivers high capacity of 131 mA h g-1 after 1000 cycles at a high current density of 1 A g-1. The excellent electrochemical performance suggests the 3D urchin-like Nb2O5 microstructures may be a promising anode candidate for high-power lithium ion batteries.
Journal of Alloys and Compounds | 2017
Y.F. Song; X.F. Ding; Ling Xiao; Xingxing Zhao; Zhenyang Cai; L. Guo; Yongbo Li; Z.Z. Zheng
Electrochemistry Communications | 2017
Sainan Liu; Zhigao Luo; Jiahao Guo; Anqiang Pan; Zhenyang Cai; Shuquan Liang
Journal of Alloys and Compounds | 2017
Sainan Liu; Zhenyang Cai; Jiang Zhou; Anqiang Pan; Shuquan Liang
Ceramics International | 2017
L. Guo; Ling Xiao; Xingxing Zhao; Y.F. Song; Zhenyang Cai; Haoran Wang; Chao Liu
Journal of Power Sources | 2017
Sainan Liu; Zhigao Luo; Gengyu Tian; Mengnan Zhu; Zhenyang Cai; Anqiang Pan; Shuquan Liang
Materials & Design | 2018
Zhenyang Cai; Yonghuang Wu; Huyun Liu; Gengyu Tian; Rong Pu; Shengming Piao; Xinyang Tang; Sainan Liu; Xiaojun Zhao; Lairong Xiao