References

  1. D.J. Kang, X.L. Tang, H.H. Yi, P. Ning, Z.Q. Ye, K. Li, Recent advances in research of super-activated carbon: property, preparation and application, Environ. Sci. Technol., 34 (2011) 110–117.
  2. N. Wei, N.Q. Zhao, W. Jia, New progress in the fabrication and application of activated carbon, Mat. Sci. Eng., 21 (2003) 777–780.
  3. X.Z. Wang, M.Q. Li, Y.X. Ju, Y.L. Zheng, J.H. Wang, Influence of preparation methods on the porosity of activated carbon, Carbon Technol., 6 (2002) 25–30.
  4. Y. Kan, Q. Yue, B. Gao, Q. Li, Comparison of activated carbons from epoxy resin of waste printed circuit boards with KOH activation by conventional and microwave heating methods, J. Taiwan Inst. Chem. Eng., 68 (2016) 440–445.
  5. V.O. Njoku, K.Y. Foo, M. Asif, B.H. Hameed, Preparation of activated carbons from rambutan (Nephelium lappaceum) peel by microwave-induced KOH activation for acid yellow 17 dye adsorption, Chem. Eng. J., 250 (2014) 198–204.
  6. T. Adinaveen, L.J. Kennedy, J.J. Vijaya, G. Sekaran, Surface and porous characterization of activated carbon prepared from pyrolysis of biomass (rice straw) by two-stage procedure and its applications in super-capacitor electrodes, J. Mater. Cycles Waste Manage., 17 (2015) 736–747.
  7. B.L. Geng, L.J. Chen, C.X. Zhang, L.Y. Pan, G.H. Huang, Preparation and characterization of activated carbons for supercapacitor under moderate temperature activation condition, J. China Coal Soc., 36 (2011) 1200–1205.
  8. K.Y. Foo, B.H. Hameed, Textural porosity, surface chemistry and adsorptive properties of durian shell derived activated carbon prepared by microwave assisted NaOH activation, Chem. Eng. J., 187 (2012) 53–62.
  9. K.Y. Foo, B.H. Hameed, Microwave-assisted preparation and adsorption performance of activated carbon from biodiesel industry solid reside: influence of operational parameters, Bio. Technol., 103 (2012) 398–404.
  10. P. Liu, H.B. Wang, G.Z. Li, X.Y. Fang, Optimization of activation conditions of high-performance activated carbon from coffee shell by response surface methodology, Bio. Chem. Eng., 51 (2017) 43–47.
  11. K.Y. Foo, B.H. Hameed, Coconut husk derived activated carbon via microwave induced activation: effects of activation agents, preparation parameters and adsorption performance, Chem. Eng. J., 184 (2012) 57–65.
  12. K. Murashko, D. Nevstrueva, A. Pihlajamäki, T. Koiranen, J. Pyrhönen, Cellulose and activated carbon based flexible electrical double-layer capacitor electrode: preparation and characterization, Energy, 119 (2017) 435–441.
  13. K.G. Rekha, R. Radhika, T. Jayalatha, S. Jacob, R. Rajeev, B.K. George, Removal of perchlo-rate from drinking water using granular activated carbon modified by acidic functional group: adsorption kinetics and equilibrium studies, Proc. Safety Environ. Protect., 109 (2017) 158–171.
  14. H.C. Sariol, J. Maggen, J. Czech, G. Reekmans, G. Reggers, J. Yperman, Characterization of the exhaustion profile of activated carbon in industrial rum “filters” based on TGA, TD-GC/MS, colorimetry and NMR relaxometry, Mater. Today Commun., 11 (2017) 1–10.
  15. S.H.M. Arshad, N. Ngadi, A.A. Aziz, N.S. Amin, M. Jusoh, S. Wong, Preparation of activated carbon from empty fruit bunch for hydrogen storage, J. Energy Storage, 8 (2016) 257–261.
  16. L. Zhou, Impacts of the adsorptive storage of hydrogen on super activated carbons to large-scale utilization of hydrogen energy, Sci. Technol. Herald, 17 (1999) 10–11 (In Chinese).
  17. L. Zhan, K.X, Li, C.X. Lu, X. M. Zhu, Y. Song, L.C. Ling, The preparation of super activated carbons and its properties for hydrogen storage, New Carbon Mater., 20 (2001) 31–25.
  18. G. Li, J. Li, W. Tan, H. Jin, H. Yang, J. Peng, Preparation and characterization of the hydrogen storage activated carbon from coffee shell by microwave irradiation and KOH activation, Inter. Biodeterior. Biodegrad., 113 (2016) 386–390.
  19. X.Z. Sun, X. Zhang, D.C. Zhang, Y.W. Ma, Activated carbonbased super capacitors using Li2SO4 aqueous electrolyte, Acta Phys. Chim. Sin., 28 (2012) 367–372.
  20. Y.F. Liu, Tailoring pore size and surface modification of activated carbon as electrode materials for supercapacitor, Tongji University, 2008 (In Chinese).
  21. Z. Chen, Y.L. Zhang, H.T. Liu, Highly capacitance-enhanced activated carbons by oxidation-activation treatments for supercapacitor applications, J. Central South Univ., 43 (2012) 4638–4645.
  22. H.S. Song, Study on the preparation and properties of activated carbon electrode materials for supercapacitors, Central South Univ., 2007, (In Chinese).
  23. B. Conway, Electrochemical Supercapacitors Scientific Fundamentals and Technological Applications, Kluwer Academic, New York, 1996.
  24. Z. Zapata-Benabithe, G. Diossa, C.D. Castro, G. Quintana, Activated carbon bio-xerogels as electrodes for super capacitors applications, Procedia Eng., 148 (2016) 18–24.