4.8 Article

Facile regulation of carbon frameworks from microporous to low-porous via molecular crosslinker design and enhanced Na storage

Journal

CARBON
Volume 167, Issue -, Pages 896-905

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.carbon.2020.05.081

Keywords

Carbon microporosity regulation; Low porous carbon; Hypercrosslinking; Porous polystyrene; Crosslinker; Na ion storage

Funding

  1. National Natural Science Foundation of China [51972270, 51702262, 51872240, 51911530212, 51672225, 21603175, 61805201]
  2. Natural Science Foundation of Shaanxi Province [2020JZ-07]
  3. Key Research and Development Program of Shaanxi Province [2019TSLGY07-03]
  4. Fundamental Research Funds for the Central Universities [3102019JC005, 3102019ghxm004]
  5. Research Fund of the State Key Laboratory of Solidification Processing, NPU, China [2019-QZ-03]
  6. Top International University Visiting Program for Outstanding Young scholars of Northwestern Polytechnical University
  7. DFG [KA 1698/27-1]
  8. Alexander von Humboldt Foundation

Ask authors/readers for more resources

Rational manipulation of the carbon framework from the microporous to nonporous via a molecular design approach is interesting but challenging. Herein, we report a versatile strategy for transforming the microporous carbon framework to the low porous one by an elaborate molecular crosslinker design in the polystyrene (PS) precursor. Direct coupling of benzene rings in PS via Scholl reaction yields hyper-crosslinked PS-derived carbon with low porous framework, while insertion of methylene crosslinker into PS via a solvent knitting strategy leads to microporous carbon framework. The results show that methylene crosslinker functions as molecular-scale soft templates for facilitating micropores, whereas direct linking PS chains promotes aromatization and mitigates micropore formation during the pyrolysis. The distinct carbon frameworks derived from similar precursor and pyrolysis condition provide an intriguing platform for structure-property relationship study, as preliminarily exemplified by the application in Na ion storage. The low-porosity carbon shows higher initial Coulombic efficiency and superior capacity thanks to its low surface area and enhanced Na insertion into pseudo-graphitic microcrystal structure. The present protocol opens up new avenues towards flexible carbon frame-work porosity manipulation at molecular level and would trigger further efforts for low-porosity carbons in energy storage. (C) 2020 Elsevier Ltd. All rights reserved.

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