4.7 Article

Microstructure regulation of pitch-based soft carbon anodes by iodine treatment towards high-performance potassium-ion batteries

Journal

JOURNAL OF COLLOID AND INTERFACE SCIENCE
Volume 615, Issue -, Pages 485-493

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcis.2022.01.178

Keywords

Coal tar pitch; Iodine treatment; Microstructure tuning; Intrinsic carbon defects; Carbon anode

Funding

  1. National Natural Science Foundation of China [52071171]
  2. Liaoning Revitalization Talents Program-Pan Deng Scholars [XLYC1802005]
  3. Liaoning BaiQianWan Talents Program [LNBQW2018B0048]
  4. Natural Science Fund of Liaoning Province for Excellent Young Scholars [2019-YQ-04]
  5. Key Project of Scientific Research of the Education Department of Liaoning Province [LZD201902]
  6. Shenyang Science and Technology Project [21-108-9-04]
  7. Australian Research Council (ARC) Future Fellowship [FT210100298, DP220100603]
  8. CSIRO Energy Centre and Kick-Start Project
  9. Victorian Government
  10. Doctoral Start-up Foundation of Liaoning Province, China [2020-BS-081]
  11. Foundation of State Key Laboratory of High-efficiency Utilization of Coal and Green Chemical Engineering [2021-K63]

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In this study, crosslinked pitch-based soft carbon nanosheets were synthesized through the iodination/dehydroiodination process at low temperature and carbonization with NaCl template. The optimized sample showed higher reversible capacity and cycling stability.
Soft carbon has been regarded as one of the most promising anode materials for potassium-ion batteries. However, the rearrangement of planar aromatics at high carbonization temperature usually yields a highly graphitized structure, which generally leads to inferior rate and cycle performance. In addition, the role of intrinsic carbon defects on potassium storage has not been well reported yet. In this work, crosslinked pitch-based soft carbon nanosheets have been synthesized through the iodination/dehydroiodination process at low temperature and carbonization with NaCl template. The iodine-treatment efficiently crosslinks the planar aromatics to three-dimensional framework by alkyl-bridged linkages, and reduces the strong pi-pi interaction during carbonization. This unique microstructure yields an ordered-in-disordered carbon microstructure, enlarged interlayer spacing, and abundant intrinsic defect sites. Benefited from these merits, the optimal sample displays 140% increase of reversible capacity to the pristine pitch-based carbon at 5 A g(-1). Particularly, it also presents 87.4% capacity retention after 1000 cycles at 1 A g(-1). This facile but simple strategy is expected to expand to other high-performance carbon materials and further understand the effect of intrinsic defects for potassium storage and beyond. (C)& nbsp;2022 Elsevier Inc. All rights reserved.

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