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Featured researches published by Dang Alei.


Chinese Science Bulletin | 2017

Preparation and electrochemical capacitive performance of graphene/carbon nanotube composite

Zhao Tingkai; Ji Xianglin; Jin Wenbo; Yang WenBo; Hu JingTian; Dang Alei; Li Hao; Li Tiehu

The development of more advanced and environmentally friendly energy storage devices is an urgent request to meet future societal and environmental needs. Supercapacitor is one of the most promising electrochemical energy storage devices owning to its long cycle life, high dynamic propagation, quickly response and low maintenance cost compared to the traditional batteries and capacitors. However, their energy density is far less batteries, which limits their application in energy storage. In order to break through the limitation, exploring novel electrode materials with both high energy densities and power densities is extremely urgent. At present, it is a hot topic to produce composite electrode materials with synergistic effect. Graphene, a one-atom-thick two dimensional single layer of sp2-bonded carbon, owning to its unique structural properties, has exhibited many advantages, such as extraordinarily high electrical and thermal conductivity, great mechanical strength and high surface area, making it a potential candidate for applications in energy storage field. Therefore, graphene based composite materials have been utilized in various practical applications, including energy storage and conversion, transparent conducting films, chemical sensors, and actuators, etc. Given the extraordinary properties of graphene, such as the low mass density, good compatibility, highly conductive, large specific surface area and excellent flexibility, it is considered as one of the most suitable substrate materials for preparing supercapacitor electrodes. In recent years, graphene composites as supercapacitor electrode material have been widely investigated. Here, three- dimensional (3D) graphene/carbon nanotube (CNT) nanocomposites were prepared by in-situ compound method using as-synthesized graphene as matrix, which prepared by chemical vapor deposition (CVD). Firstly, graphene was prepared on Ni foam by CVD method using CH4 as carbon sources and H2/Ar as buffer gas at 850°C. Then a solution carbon source was obtained by ultrasonic vibration using a mixture solution of ferrocene and dimethylbenzenes. Finally, 3D graphene/CNT nanocomposite was synthesized by CVD method using Ni foam deposited graphene as supporter substrate at 750°C for 30 min. The morphology and microstructure of the resulting samples were characterized using scanning electron microscopy (SEM) and transmission electron microscopy (TEM), and the electrochemical capacitive performance of the samples were investigated using CHI 660D chemical workstation to analyze the cyclic voltammetry and AC impedance. The results indicated that large amounts of graphenes had been formed on the Ni foam and 3D graphene/CNT nanocomposites also had been synthesized. The 3D lamellar structures between graphenes formed in the synthesis process could densely upload active substance, which was very different in structure and performance with individual graphene. The cyclic voltammetry (CV) curves of 3D graphene/CNT composite exhibited that the electrochemical capacitive performance has good reversibility. The Nyquist plots also displayed that the 3D graphene/CNT composite has excellent performance of electric charge transportation and double layer capacitance. The electrochemical measurements indicated that the maximum specific capacitance of 3D graphene/CNT composite, as the supercapacitor electrode material, exhibited a maximum specific capacitance of 289.8 F/g using 1.5 mol/L Li2SO4 as the electrolyte in the system and also showed excellent high-capacity and cycling stability. The specific capacitance of the 3D graphene/CNT composite remains 92% after 2000 cycles.


RSC Advances (Web) | 2017

3D連結した非晶質カーボンナノチューブ/グラフェン/BaFe_12O_19複合材料とその電磁波吸収特性の直接in situ合成【Powered by NICT】

Zhao Tingkai; Ji Xianglin; Jin Wenbo; Wang Chuan; Ma Wenxiu; Gao Junjie; Dang Alei; Li Tiehu; Shang Songmin; Zhou Zhongfu


RSC Advances (Web) | 2017

3Dグラフェン/マツ針状鉄ナノ針状ホイスカ複合材料の合成と電磁波吸収特性【Powered by NICT】

Zhao Tingkai; Jin Wenbo; Ji Xianglin; Gao Junjie; Xiong Chuanyin; Dang Alei; Li Hao; Li Tiehu; Shang Songmin; Zhou Zhongfu


Journal of Alloys and Compounds | 2017

粘結剤フリースーパーキャパシタ電極としての相互接続ナノ多孔性3D還元グラフェンオキシド-炭素nanotube-ポリアニリンハイブリッドの作製の2段階アプローチ【Powered by NICT】

Xiong Chuanyin; Li Tiehu; Zhu Yechuan; Zhao Tingkai; Dang Alei; Li Hao; Ji Xianglin; Shang Yudong; Khan Muhammad


Journal of Alloys and Compounds | 2017

高強度及び軽量によるムライトホイスカネットワーク強化セラミック【Powered by NICT】

Chen Xudong; Li Tiehu; Ren Qiang; Wu Xiulan; Li Hao; Dang Alei; Zhao Tingkai; Shang Yudong; Zhang Ying


Journal of Alloys and Compounds | 2017

整列した非晶質カーボンナノチューブ/BaFe_12O_19ナノロッド複合材料の電磁波吸収特性【Powered by NICT】

Zhao Tingkai; Ji Xianglin; Jin Wenbo; Guo Shasha; Zhao Haoyu; Yang Wenhui; Wang Xinqi; Xiong Chuanyin; Dang Alei; Li Hao; Li Tiehu; Shang Songmin; Zhou Zhongfu


Electrochimica Acta | 2017

連結3次元グラフェン発泡体/ポリアニリンナノロッドスーパーキャパシタのその場合成【Powered by NICT】

Zhao Tingkai; Ji Xianglin; Bi Peng; Jin Wenbo; Xiong Chuanyin; Dang Alei; Li Hao; Li Tiehu; Shang Songmin; Zhou Zhongfu


Composites Part B-engineering | 2017

フレキシブル高性能繊維超コンデンサ用バインダーフリー電極としての炭素繊維上に成長させた還元グラフェン酸化物‐炭素ナノチューブ【Powered by NICT】

Xiong Chuanyin; Li Tiehu; Zhao Tingkai; Dang Alei; Li Hao; Ji Xianglin; Jin Wenbo; Jiao Shasha; Shang Yudong; Zhang Yonggang


Journal of Analytical and Applied Pyrolysis | 2016

グラフェン/ポリ(メタクリル酸メチル)複合材料の性能に及ぼすマトリックス内での熱還元から誘導されたグラフェンの影響【Powered by NICT】

Shang Yudong; Li Tiehu; Yin Yuting; Li Hao; Dang Alei; Zhang Li; Chen Xudong; Zhang Ying; Xiong Chuanyin; Zhao Tingkai


Composites Part B-engineering | 2016

低温及び促進圧力熱還元から誘導されたグラフェンの調製と特性化【Powered by NICT】

Shang Yudong; Li Tiehu; Li Hao; Dang Alei; Zhang Li; Yin Yuting; Xiong Chuanyin; Zhao Tingkai

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Zhao Tingkai

Northwestern Polytechnical University

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Li Hao

Northwestern Polytechnical University

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Li Tiehu

Northwestern Polytechnical University

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Ji Xianglin

Northwestern Polytechnical University

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Jin Wenbo

Northwestern Polytechnical University

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Hu JingTian

Northwestern Polytechnical University

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Yang WenBo

Northwestern Polytechnical University

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