Acta Phys. -Chim. Sin. ›› 2025, Vol. 41 ›› Issue (10): 100114.doi: 10.1016/j.actphy.2025.100114
• ARTICLE • Previous Articles Next Articles
Jing Zhang1, Su Zhang1,*(
), Qiqi Li1, Linken Ji2, Yutong Li3, Yukang Ren1, Xiaobei Zang1, Ning Cao1, Han Hu4,*(
), Peng Liang5,*(
), Zhuangjun Fan1
Received:2025-04-10
Revised:2025-06-02
Accepted:2025-06-10
Published:2025-09-29
Contact:
Email: suzhangs@163.com (Su Zhang)hhu@upc.edu.cn (Han Hu)liangpeng202@hotmail.com (Peng Liang)
Supported by:Jing Zhang, Su Zhang, Qiqi Li, Linken Ji, Yutong Li, Yukang Ren, Xiaobei Zang, Ning Cao, Han Hu, Peng Liang, Zhuangjun Fan. Integrating high surface area and electric conductivity in activated carbon by in situ formation of the less-defective carbon network during selective chemical etching[J]. Acta Phys. -Chim. Sin. 2025, 41(10), 100114. doi: 10.1016/j.actphy.2025.100114
Fig 1
(a) Specific surface area and electric conductivity of the pitch-derived activated carbons prepared with different KOH to pitch mass ratios. PPAC-X with different PAN additions: (b) N2 adsorption-desorption isothermal curves, (c) porous structure evolution, (d) pore size distributions, and (e) variation of specific surface area and electric conductivity. (f) Comparison of specific surface area and electric conductivity of the commercial and reported activated carbons."
Fig 2
(a) Specific surface area and electric conductivity of PAN-C and PAN-AC-Y. (b) TGA-DSC curves of PAN-C in air atmosphere. (c) AD/AG ratios of PAN-C and PAN-AC-Y from the Raman spectra. (d) XPS K2p spectra of OP and OPAN after KOH adsorption. Elemental mappings of (e1) OP, (e2) OPAN, and (e3) OPPAN-20% after KOH adsorption and (f) the corresponding KOH adsorption contents."
Fig 5
Electrochemical performance of the samples measured using a two-electrode system: (a) CV curves at 10 mV∙s−1, (b) rate performance at various current densities, (c) CSSA of PPAC-20% versus the reported carbon materials, (d) the EIS plots, (e) the electric double-layer formation (Ref) and Warburg impedances (Zw) of the samples, and (f) electric conductivity in relation to the electrochemical kinetics parameters. Electrochemical performance of PPAC-20%//PPAC-20% supercapacitor with the electrode mass loading of 10 mg·cm−2: (g) electrode areal capacitance at different current densities, (h) Ragone plots, and (h) cycling stability."
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