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V. Barranco, M. Lillo-Ródenas, Á. Linares-Solano, A. Ōya, F. Pico, J. Ibáñez, Fernando Agulló-Rueda, J. Amarilla, J. Rojo (2010)
Amorphous Carbon Nanofibers and Their Activated Carbon Nanofibers as Supercapacitor ElectrodesJournal of Physical Chemistry C, 114
K. Okajima, Keigo Ohta, M. Sudoh (2005)
Capacitance behavior of activated carbon fibers with oxygen-plasma treatmentElectrochimica Acta, 50
Changling Liu, Jing Zhang, Sumei Liu (2002)
[Physical and chemical characters of materials from several mineral aerosol sources in China].Huan jing ke xue= Huanjing kexue, 23 4
Journal of Environmental Sciences, 23
T. Bandosz, J. Jagiello, C. Contescu, J. Schwarz (1993)
Characterization of the surfaces of activated carbons in terms of their acidity constant distributionsCarbon, 31
R. Wenzel (1936)
RESISTANCE OF SOLID SURFACES TO WETTING BY WATERIndustrial & Engineering Chemistry, 28
Journal of Applied Biomaterials & Functional Materials, 44
Kim Chan, B. Ngoc, K. Yang, M. Kojima, Y. Kim, Yong Kim, M. Endo, Yang Chul (2007)
Self‐Sustained Thin Webs Consisting of Porous Carbon Nanofibers for Supercapacitors via the Electrospinning of Polyacrylonitrile Solutions Containing Zinc ChlorideAdvanced Materials, 19
Feng Yi-hong (2013)
Study on oxidation modification of petroleum coke and the capacitive performance of the resultant activated carbonJournal of Functional Biomaterials
Linjie Su, B. Li, Dong Zhao, Chuanli Qin, Zheng Jin (2016)
Modified polyacrylonitrile-based activated carbon fibers applied in supercapacitorPigment & Resin Technology, 45
Tong Zhou, Q. Jiang, Li Wang, Zhipeng Qiu, Yunyan Liu, Jin Zhou, Bo Liu (2018)
Facile preparation of nitrogen-enriched hierarchical porous carbon nanofibers by Mg(OAc)2-assisted electrospinning for flexible supercapacitorsApplied Surface Science
Ling-Yan Liu, Liuhui Liao, Q. Meng, B. Cao (2015)
High performance graphene composite microsphere electrodes for capacitive deionisationCarbon, 90
Chang Kim, Jae-Hyung Wee, Y. Kim, K. Yang, Cheol-Min Yang (2016)
Tailoring the pore structure of carbon nanofibers for achieving ultrahigh-energy-density supercapacitors using ionic liquids as electrolytesJournal of Materials Chemistry, 4
V. Channu, R. Holze, S. Wicker, E. Walker, Q. Williams, Rajamohan Kalluru (2011)
Synthesis and Characterization of (Ru-Sn)O2 Nanoparticles for SupercapacitorsMaterials Sciences and Applications, 02
C. Du, Hui Liu, MuDan Xiao, D. Gao, Dongwei Huang, Zhiyi Li, Tengfei Chen, Jianmin Mo, Kui Wang, ChuangRong Zhang (2012)
Adsorption of Iron and Lead Ions from an Aqueous Solution by Plasma-Modified Activated CarbonIndustrial & Engineering Chemistry Research, 51
Junwei Lang, Xingbin Yan, Q. Xue (2011)
Facile preparation and electrochemical characterization of cobalt oxide/multi-walled carbon nanotube composites for supercapacitorsJournal of Power Sources, 196
J. Cerdá, M. Vicente, J. Gutiérrez, S. Esplugas, J. Mata (1989)
A new methodology for the optimal design and production schedule of multipurpose batch plantsIndustrial & Engineering Chemistry Research, 28
Yu Jin, Dayong Yang, Dongyang Kang, Xingyu Jiang (2010)
Fabrication of necklace-like structures via electrospinning.Langmuir : the ACS journal of surfaces and colloids, 26 2
C. Portet, P. Taberna, P. Simon, E. Flahaut, C. Laberty‐Robert (2005)
High power density electrodes for Carbon supercapacitor applicationsElectrochimica Acta, 50
K. Cai, D. Wang, Z. Jin, Weifang Mu, Q.-G. Zhang (2010)
Batteries and Energy Storage Study on the Application of N,N'-1,4-Diethyl, Triethylene, and Diamine Tetrafluoroborate in Supercapacitors
Jing Dong, A. Asandei, R. Parnas (2010)
Aqueous electrospinning of wheat gluten fibers with thiolated additivesPolymer, 51
Chan Kim, S. Park, Janghyun Cho, Do-young Lee, Park Jin, Wan-Jin Lee, K. Yang (2004)
Raman spectroscopic evaluation of polyacrylonitrile‐based carbon nanofibers prepared by electrospinningJournal of Raman Spectroscopy, 35
Yu Wang, S. Serrano, J. Santiago-Avilés (2002)
Conductivity measurement of electrospun PAN-based carbon nanofiberJournal of Materials Science Letters, 21
Jin Zhenxing, Weifang Mu, C. Zhang, T. He, Zhang Qingguo, Junbo Hou, K. Cai (2012)
Activated carbon modified by coupling agent for supercapacitorElectrochimica Acta, 59
Ashraf Ali, G. Rutledge (2009)
Hot-pressed electrospun PAN nano fibers: An idea for flexible carbon matJournal of Materials Processing Technology, 209
P. Cook, D. Oevelen, K. Soetaert, J. Middelburg (2009)
Carbon and nitrogen cycling on intertidal mudflats of a temperate Australian estuary. IV. Inverse model analysis and synthesisMarine Ecology Progress Series, 394
Bo-Hye Kim, Chang Kim, D. Lee (2016)
Mesopore-enriched activated carbon nanofiber web containing RuO2 as electrode material for high-performance supercapacitorsJournal of Electroanalytical Chemistry, 760
P. Jiménez, P. Castell, R. Sainz, A. Ansón, M. Martínez, Ana Benito, W. Maser (2010)
Carbon nanotube effect on polyaniline morphology in water dispersible composites.The journal of physical chemistry. B, 114 4
Yongzhen Yang, Xuguang Liu, Bingshe Xu, Tianbao Li (2006)
Preparation of vapor-grown carbon fibers from deoiled asphaltCarbon, 44
H. An, B. Feng (2010)
Desorption of CO2 from activated carbon fibre-phenolic resin composite by electrothermal effectInternational Journal of Greenhouse Gas Control, 4
Xiao-hong Qin, W. Yuqin, Ji-Huan He, Zhang Juan, Jian-yong Yu, Shanyuan Wang (2004)
Effect of LiCl on electrospinning of PAN polymer solution: theoretical analysis and experimental verificationPolymer, 45
The purpose of this paper is to prepare a spherical modifier-modified activated carbon fiber of high specific capacitance intended for electrode materials of supercapacitor.Design/methodology/approachIn this study, phenolic-based microspheres are taken as modifiers to prepare PAN-based fiber composites by electrospinning, pre-oxidation and carbonization. Pearl-chain structures appear in RFC/ACF composites, and pure polyacrylonitrile fibers show a dense network. The shape and cross-linking degree are large. After the addition of the phenolic-based microspheres, the composite material exhibits a layered pearlite chain structure with a large porosity, and the RFC/ACF composite material is derived because of the existence of a large number of bead chain structures in the composite material. The density increases, the volume declines and the mass after being assembled into a supercapacitor as a positive electrode material decreases. The specific surface area of RFC/ACF composites is increased as compared to pure fibers. The increase in specific surface area could facilitate the diffusion of electrolyte ions in the material. Owing to the large number of bead chains, plenty of pore channels are provided for the diffusion of electrolyte ions, which is conducive to enhancing the electrochemical performance of the composite and improving the RFC/ACF composite and the specific capacitance of the material. The methods of electrochemical testing on symmetric supercapacitors (as positive electrodes) are three-electrode cyclic voltammetry, alternating current impedance and cycle stability.FindingsThe specific capacitance value of the composite material was found to be 389.2 F/g, and the specific capacitance of the electrode operating at a higher current density of 20 mA/cm2 was 11.87 F/g (the amount of the microsphere modifier added was 0.3 g). Using this material as a positive electrode to assemble into asymmetrical supercapacitor, after 2,000 cycles, the specific capacitance retention rate was 87.46 per cent, indicating excellent cycle stability performance. This result can be attributed to the fact that the modifier embedded in the fiber changes the porosity between the fibers, while improving the utilization of the carbon fibers and making it easier for electrolyte ions to enter the interior of the composites, thereby increasing the capacitance of the composites.Originality/valueThe modified PAN-based activated carbon fibers in the study had high specific surface area and significantly high specific capacitance, which makes it applicable as an efficient and environment-friendly absorbent, as well as an advanced electrode material for supercapacitor.
Pigment & Resin Technology – Emerald Publishing
Published: Aug 21, 2019
Keywords: Additives; Composites; Electrospinning; Electrochemistry; Activated carbon fibers; Phenolic balls; Supercapacitors; Modifiers; Activated carbon fibers
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