4.8 Article

Structure-directed fabrication of ultrathin carbon nanosheets from layered metal salts: A separation and supercapacitor study

Journal

CARBON
Volume 139, Issue -, Pages 740-749

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.carbon.2018.07.037

Keywords

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Funding

  1. National Natural Science Foundation of China [21671102, 201676036]
  2. Program of China Scholarships Council [201708320084]
  3. Natural Science Foundation of Jiangsu Province [BK20161538]
  4. Innovative Research Team Program by the Ministry of Education of China [IRT13070]
  5. Six Talent Peaks Project in Jiangsu Province [JY-030]

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Ultra-thin carbon nanosheets showed specific and promising applications in energy conversions and mass transfers. Inspired by the idea of structure-directed formation, we report a catalyst-free, self-templated, eco-friendly, controllable and facile method for the preparation of high porous and ultrathin two dimensional carbon materials via in-situ thermal transformation of crystalline and layered metal-salt. The conversion mechanism was clearly validated, while the crystallization degree of graphitic carbon of series of nanosheets was systemically tuned. The hierarchical pore system enables the carbon nanosheets to show the N-2 gas uptake up to 1780 cm(3)g(-1) and pore volume to 2.7 cm(3)g(-1). With in-situ generated carboxylate and singly-bonded oxygen, the C-600 showed highest C3H6/C2H4 gas selectivity (16.0) among all porous materials. More importantly, complete removal of C3H (6 )from its C2H4 mixture was confirmed by breakthrough experiments under flowing condition at ambient temperature. As well, due to the higher surface area, the symmetric supercapacitor device that assembled from C-600 showed excellent cycling durability (98.3%) with energy density of 18.39 Wh.kg(-1) during ultrafast charging/discharging 10000 cycles. (C) 2018 Elsevier Ltd. All rights reserved.

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