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Dive into the research topics where Haichao Chen is active.

Publication


Featured researches published by Haichao Chen.


Journal of Materials Chemistry | 2015

Bimetallic nickel cobalt selenides: a new kind of electroactive material for high-power energy storage

Haichao Chen; Si Chen; Meiqiang Fan; Chao Li; Da Chen; Guanglei Tian; Kangying Shu

For the first time, bimetallic Ni–Co selenides with different Ni and Co ratios have been synthesized and used as electrode materials for high-power energy storage. Owing to the synergistic effect between Ni and Co, bimetallic Ni–Co selenides, especially for Ni0.67Co0.33Se, show higher specific capacity and improved rate capability combined with excellent cycling stability than the monometallic Ni or Co selenide.


Chemistry-an Asian Journal | 2015

Hierarchical NiCo2S4 nanotube@NiCo2S4 nanosheet arrays on Ni foam for high‐performance supercapacitors

Haichao Chen; Si Chen; Hongyan Shao; Chao Li; Meiqiang Fan; Da Chen; Guanglei Tian; Kangying Shu

Hierarchical NiCo2 S4 nanotube@NiCo2 S4 nanosheet arrays on Ni foam have been successfully synthesized. Owing to the unique hierarchical structure, enhanced capacitive performance can be attained. A specific capacitance up to 4.38 F cm(-2) is attained at 5 mA cm(-2) , which is much higher than the specific capacitance values of NiCo2 O4 nanosheet arrays, NiCo2 S4 nanosheet arrays and NiCo2 S4 nanotube arrays on Ni foam. The hierarchical NiCo2 S4 nanostructure shows superior cycling stability; after 5000 cycles, the specific capacitance still maintains 3.5 F cm(-2) . In addition, through the morphology and crystal structure measurement after cycling stability test, it is found that the NiCo2 S4 electroactive materials are gradually corroded; however, the NiCo2 S4 phase can still be well-maintained. Our results show that hierarchical NiCo2 S4 nanostructures are suitable electroactive materials for high performance supercapacitors.


Chemistry-an Asian Journal | 2016

Hierarchical NiCo2S4Nanotube@NiCo2S4Nanosheet Arrays on Ni Foam for High-Performance Supercapacitors

Haichao Chen; Si Chen; Hongyan Shao; Chao Li; Meiqiang Fan; Da Chen; Guanglei Tian; Kangying Shu

Hierarchical NiCo2 S4 nanotube@NiCo2 S4 nanosheet arrays on Ni foam have been successfully synthesized. Owing to the unique hierarchical structure, enhanced capacitive performance can be attained. A specific capacitance up to 4.38 F cm(-2) is attained at 5 mA cm(-2) , which is much higher than the specific capacitance values of NiCo2 O4 nanosheet arrays, NiCo2 S4 nanosheet arrays and NiCo2 S4 nanotube arrays on Ni foam. The hierarchical NiCo2 S4 nanostructure shows superior cycling stability; after 5000 cycles, the specific capacitance still maintains 3.5 F cm(-2) . In addition, through the morphology and crystal structure measurement after cycling stability test, it is found that the NiCo2 S4 electroactive materials are gradually corroded; however, the NiCo2 S4 phase can still be well-maintained. Our results show that hierarchical NiCo2 S4 nanostructures are suitable electroactive materials for high performance supercapacitors.


Chemistry-an Asian Journal | 2016

Hierarchical NiCo2 S4 Nanotube@NiCo2 S4 Nanosheet Arrays on Ni Foam for High-Performance Supercapacitors.

Haichao Chen; Si Chen; Hongyan Shao; Chao Li; Meiqiang Fan; Da Chen; Guanglei Tian; Kangying Shu

Hierarchical NiCo2 S4 nanotube@NiCo2 S4 nanosheet arrays on Ni foam have been successfully synthesized. Owing to the unique hierarchical structure, enhanced capacitive performance can be attained. A specific capacitance up to 4.38 F cm(-2) is attained at 5 mA cm(-2) , which is much higher than the specific capacitance values of NiCo2 O4 nanosheet arrays, NiCo2 S4 nanosheet arrays and NiCo2 S4 nanotube arrays on Ni foam. The hierarchical NiCo2 S4 nanostructure shows superior cycling stability; after 5000 cycles, the specific capacitance still maintains 3.5 F cm(-2) . In addition, through the morphology and crystal structure measurement after cycling stability test, it is found that the NiCo2 S4 electroactive materials are gradually corroded; however, the NiCo2 S4 phase can still be well-maintained. Our results show that hierarchical NiCo2 S4 nanostructures are suitable electroactive materials for high performance supercapacitors.


Journal of Power Sources | 2016

One-pot synthesis of hollow NiSe–CoSe nanoparticles with improved performance for hybrid supercapacitors

Haichao Chen; Meiqiang Fan; Chao Li; Guanglei Tian; Chunju Lv; Da Chen; Kangying Shu; Jianjun Jiang


Electrochimica Acta | 2016

Synergistic effect of Ni and Co ions on molybdates for superior electrochemical performance

Haichao Chen; Si Chen; Yuying Zhu; Chao Li; Meiqiang Fan; Da Chen; Guanglei Tian; Kangying Shu


International Journal of Hydrogen Energy | 2016

Ternary graphene/sulfur/SiO2 composite as stable cathode for high performance lithium/sulfur battery

Pan Wei; Meiqiang Fan; Haichao Chen; Da Chen; Chao Li; Kangying Shu; Chunju Lv


Applied Surface Science | 2016

Dual-shell hollow polyaniline/sulfur-core/polyaniline composites improving the capacity and cycle performance of lithium–sulfur batteries

Yanling An; Pan Wei; Meiqiang Fan; Da Chen; Haichao Chen; QiangJian Ju; Guanglei Tian; Kangying Shu


Journal of Materials Science | 2017

Tuning the electrochemical behavior of CoxMn3−x sulfides by varying different Co/Mn ratios in supercapacitor

Si Chen; Haichao Chen; Chao Li; Meiqiang Fan; Chunju Lv; Guanglei Tian; Kangying Shu


Journal of Sol-Gel Science and Technology | 2016

Sea urchin-like Ni–Co sulfides with different Ni to Co ratios for superior electrochemical performance

Si Chen; Haichao Chen; Meiqiang Fan; Chao Li; Kangying Shu

Collaboration


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Kangying Shu

China Jiliang University

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Meiqiang Fan

China Jiliang University

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Chao Li

China Jiliang University

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Da Chen

China Jiliang University

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Guanglei Tian

China Jiliang University

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Si Chen

China Jiliang University

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Chunju Lv

China Jiliang University

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Hongyan Shao

China Jiliang University

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Pan Wei

China Jiliang University

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QiangJian Ju

China Jiliang University

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