687
Views
1
CrossRef citations to date
0
Altmetric
Research Article

EDLC performance of ammonium salt-green polymer electrolyte sandwiched in metal-free electrodes

ORCID Icon, ORCID Icon, ORCID Icon, ORCID Icon, ORCID Icon, ORCID Icon & ORCID Icon show all
Pages 1-9 | Received 07 Jul 2023, Accepted 02 Sep 2023, Published online: 09 Sep 2023

References

  • Aziz, S. B., Dannoun, E. M. A., Hamsan, M. H., Ghareeb, H. O., Nofal, M. M., Karim, W. O., … Kadir, M. F. Z. A. (2021). A polymer blend electrolyte based on cs with enhanced ion transport and electrochemical properties for electrical double layer capacitor applications. Polymers, 13(6), 930. doi:10.3390/polym13060930
  • Cazón, P., Puertas, G., & Vázquez, M. (2022). Production and characterization of active bacterial cellulose films obtained from the fermentation of wine bagasse and discarded potatoes by Komagateibacter xylinus. Polymers, 14(23), 5194. doi:10.3390/polym14235194
  • Dannoun, E. M. A., Aziz, S. B., Brza, M. A., Al-Saeedi, S. I., Nofal, M. M., Mishra, K., … Hadi, J. M. (2022). Electrochemical and ion transport studies of li + ion-conducting mc-based biopolymer blend electrolytes. International Journal of Molecular Sciences, 23(16), 9152. doi:10.3390/ijms23169152
  • Deng, L., Young, R. J., Kinloch, I. A., Abdelkader, A. M., Holmes, S. M., Rio, D. A. D. H., & Eichhorn, S. J. (2013). Supercapacitance from cellulose and carbon nanotube nanocomposite fibers. ACS Applied Materials & Interfaces, 5(20), 9983–9990. doi:10.1021/am403622v
  • Fattah, N. F. A., Ng, H. M., Mahipal, Y. K., Numan, A., Ramesh, S., & Ramesh, K. (2016). An approach to solid-state electrical double layer capacitors fabricated with graphene oxide-doped, ionic liquid-based solid copolymer electrolytes. Materials (Basel, Switzerland), 9(6), 450. doi:10.3390/ma9060450
  • Firdousie, N., Ahmed, I., Hussain, I., Nath, S., & Bhutia, R. N. (2022). Impact of Covid-19 lockdown on the fisheries sector of India. Food and Scientific Reports, 2, 43.
  • Fu, J., Alee, M., Yang, M., Liu, H., Li, Y., Li, Z., & Yu, L. (2022). Synergizing multi-plasticizers for a starch-based edible film. Foods (Basel, Switzerland), 11(20), 3254. doi:10.3390/foods11203254
  • Hamsan, M. H., Halim, N. A., Demon, S. Z. N., Sa’aya, N. S. N., Kadir, M. F. Z., Abidin, Z. H. Z., … Nor, N. M. (2022). Multifunction web-like polymeric network bacterial cellulose derived from SCOBY as both electrodes and electrolytes for pliable and low-cost supercapacitor. Polymers, 14(15), e11048. doi:10.3390/polym14153196
  • Haque, F., & Fan, C. (2022). Prospect of microplastic pollution control under the “New normal” concept beyond COVID-19 pandemic. Journal of Cleaner Production, 367, 133027. doi:10.1016/j.jclepro.2022.133027
  • Jäckel, N., Weingarth, D., Schreiber, A., Krüner, B., Zeiger, M., Tolosa, A., … Presser, V. (2016). Performance evaluation of conductive additives for activated carbon supercapacitors in organic electrolyte. Electrochimica Acta, 191, 284–298. doi:10.1016/j.electacta.2016.01.065
  • Jenkins, H. D. B., & Morris, D. F. C. (1976). A new estimation of the lattice energies of the ammonium halides and the proton affinity of gaseous ammonia. Molecular Physics, 32(1), 231–236. doi:10.1080/00268977600101741
  • Jordá-Reolid, M., Ibáñez-García, A., Catani, L., & Martínez-García, A. (2022). Development of blends to improve flexibility of biodegradable polymers. Polymers, 14(23), 5223. doi:10.3390/polym14235223
  • Joseph, N., Shafi, P. M., Bose, A. C., Joseph, N., Shafi, P. M., & Bose, A. C. (2020). Recent advances in 2D-MoS2 and its composite nanostructures for supercapacitor electrode application. Energy & Fuels, 34(6), 6558–6597. doi:10.1021/acs.energyfuels.0c00430
  • Kato, M., Hiraoka, K., & Seki, S. (2020). Investigation of the ionic conduction mechanism of polyether/Li7La3Zr2O12 composite solid electrolytes by electrochemical impedance spectroscopy. Journal of the Electrochemical Society, 167(7), 070559. doi:10.1149/1945-7111/ab8478
  • Landi, G., Notte, L. L., Palma, A. L., Sorrentino, A., Maglione, M. G., & Puglisi, G. A. (2021). A comparative evaluation of sustainable binders for environmentally friendly carbon-based supercapacitors. Nanomaterials (Basel, Switzerland), 12(1), 46. doi:10.3390/nano12010046
  • Latif, F. A., Zailani, N. A. M., Al Shukaili, Z. S. M., Zamri, S. F. M., Kasim, N. A. M., Rani, M. S. A., & Norrrahim, M. N. F. (2022). Review of poly (methyl methacrylate) based polymer electrolytes in solid-state supercapacitors. International Journal of Electrochemical Science, 17(1), 22013. doi:10.20964/2022.01.44
  • Li, X., Tang, Y., Song, J., Yang, W., Wang, M., Zhu, C., … Lin, Y. (2018). Self-supporting activated carbon/carbon nanotube/reduced graphene oxide flexible electrode for high performance supercapacitor. Carbon, 129, 236–244. doi:10.1016/j.carbon.2017.11.099
  • Liew, C. W., Ramesh, S., & Arof, A. K. (2014). Investigation of ionic liquid-based poly(vinyl alcohol) proton conductor for electrochemical double-layer capacitor. High Performance Polymers, 26(6), 632–636. doi:10.1177/0954008314536212
  • Maryam, A. M., & Abdullah, O. G. (2020). Effect of high ammonium salt concentration and temperature on the structure, morphology, and ionic conductivity of proton-conductor solid polymer electrolytes based PVA. Membranes, 10(10), 262. doi:10.3390/membranes10100262
  • Navaratnam, S., Rahman, N. A. A., Idris, N. A., & Abidin, S. Z. Z. (2020). The effect of glycerol on Na + ion conductivity and dielectric properties of potato starch-chitosan blend biopolymer electrolyte. International Journal of Electroactive Materials, 8, 10.
  • Pal, B., Yang, S., Ramesh, S., Thangadurai, V., & Jose, R. (2019). Electrolyte selection for supercapacitive devices: A critical review. Nanoscale Advances, 1(10), 3807–3835. doi:10.1039/c9na00374f
  • Pan, Z., Yang, J., Zhang, Y., Gao, X., & Wang, J. J. (2020). Quasi-solid-state fiber-shaped aqueous energy storage devices: Recent advances and prospects. Journal of Materials Chemistry A, 8(14), 6406–6433. doi:10.1039/C9TA13887K
  • Gautham Prasad, G., Shetty, N., Thakur, S., Bommegowda, K. B., & Rakshitha. (2019). Supercapacitor technology and its applications: A review. IOP Conference Series: Materials Science and Engineering, 561(1), 012105. doi:10.1088/1757-899X/561/1/012105
  • Qadir, R., & Gulshan, F. (2018). Reclamation of lithium cobalt oxide from waste lithium ion batteries to be used as recycled active cathode materials. Materials Sciences and Applications, 09(01), 142–154. doi:10.4236/msa.2018.91010
  • Sa’aya, N. S. N., Demon, S. Z. N., Abdullah, N., Azmi, A. F. M., & Halim, N. A. (2023). Amperometric study of P3HT/multi-walled carbon nanotubes composite for malathion sensing. In: Maleque, M.A., Ahmad Azhar, A.Z., Sarifuddin, N., Syed Shaharuddin, S.I., Mohd Ali, A., Abdul Halim, N.F.H. (Eds.) Proceeding of 5th International Conference on Advances in Manufacturing and Materials Engineering. Lecture Notes in Mechanical Engineering. Singapore: Springer. doi:10.1007/978-981-19-9509-5_9
  • Sahin, M. E., Blaabjerg, F., & Sangwongwanich, A. (2021). Modelling of supercapacitors based on simplified equivalent circuit. CPSS Transactions on Power Electronics and Applications (CPSS TPEA), 6, 31–39.
  • Sekhar, P. C., Kumar, P. N., Sasikala, U., Rao, V. V. R. N., & Sharma, A. K. (2012). Investigations on lithium ion complexed polyvinyl alcohol (PVA) solid polymer electrolyte films. IRACST-IRACST-Engineering Science and Technology: An International Journal (ESTIJ), 2, 908–912.
  • Shukur, M. F., & Kadir, M. F. Z. (2015). Hydrogen ion conducting starch-chitosan blend based electrolyte for application in electrochemical devices. Electrochimica Acta, 158, 152–165. doi:10.1016/j.electacta.2015.01.167
  • Silva, R. R. A., Marques, C. S., Arruda, T. R., Teixeira, S. C., de Oliveira, T. V., Stringheta, P. C., … de Fátima Ferreira Soares, N. (2022). Ionic strength of methylcellulose-based films: An alternative for modulating mechanical performance and hydrophobicity for potential food packaging application. Polysaccharides, 3(2), 426–440. doi:10.3390/polysaccharides3020026
  • Sohaimy, M. I. H., & Isa, M. I. N. (2022). Proton-conducting biopolymer electrolytes based on carboxymethyl cellulose doped with ammonium formate. Polymers, 14(15), 3019. doi:10.3390/polym14153019
  • Suleman, M., Deraman, M., Othman, M. A. R., Omar, R., Hashim, M. A., Basri, N. H., … Hamdan, E. (2016). Electric double-layer capacitors with tea waste derived activated carbon electrodes and plastic crystal based flexible gel polymer electrolytes. Journal of Physics: Conference Series, 739, 012086. doi:10.1088/1742-6596/739/1/012086
  • Tiwari, A. P., Mukhiya, T., Muthurasu, A., Chhetri, K., Lee, M., Dahal, B., … Kim, H. Y. (2021). A review of electrospun carbon nanofiber-based negative electrode materials for supercapacitors. Electrochem, 2(2), 236–250. doi:10.3390/electrochem2020017
  • Tshiani, C. T., & Umenne, P. (2022). The characterization of the electric double-layer capacitor (EDLC) using Python/MATLAB/Simulink (PMS)-hybrid model. Energies, 15(14), 5193. doi:10.3390/en15145193
  • Vijaya, N., Selvasekarapandian, S., Malathi, J., Iwai, Y., Nithya, H., & Kawamura, J. (2013). 1H NMR study on PVP-NH4Cl based-proton conducting polymer electrolyte. Indian Journal of Applied Research, 3, 506. doi:10.15373/2249555X/DEC2013/154
  • Winie, T., Jamal, A., Saaid, F. I., & Tseng, T.-Y. (2018). Hexanoyl chitosan/ENR25 blend polymer electrolyte system for electrical double layer capacitor. Polymers Advanced Technologies, 30, 1. doi:10.1002/pat.4510
  • Wojciechowski, J., Kolanowski, Ł., Bund, Ł. A., & Lota, G. (2017). The influence of current collector corrosion on the performance of electrochemical capacitors. Journal of Power Sources, 368, 18–29. doi:10.1016/j.jpowsour.2017.09.069
  • Wu, D., & Zhong, W. J. (2019). A new strategy for anchoring a functionalized graphene hydrogel in a carbon cloth network to support a lignosulfonate/polyaniline hydrogel as an integrated electrode for flexible high areal-capacitance supercapacitors. Journal of Materials Chemistry A, 7(10), 5819–5830. doi:10.1039/C8TA11153G
  • Yang, R., Chang, Y., Yang, X., Dai, J., Chen, Y., Chang, W., & Xiong, W. (2021). Electromechanical sorting method for improving the sensitivity of micropyramid carbon nanotube film flexible force sensor. Composites Part B: Engineering, 217, 108818. doi:10.1016/j.compositesb.2021.108818
  • Yassine, M., & Fabris, D. (2017). Performance of commercially available supercapacitors. Energies, 10(9), 1340. doi:10.3390/en10091340
  • Yuan, Z., Nag, R., & Cummins, E. (2022). Human health concerns regarding microplastics in the aquatic environment – From marine to food systems. The Science of the Total Environment, 823(1016), 153730. doi:10.1016/j.scitotenv.2022.153730
  • Yusof, Y. M. (2017). Characteristics of corn starch/chitosan blend green polymer electrolytes complexed with ammonium iodide and its application in energy devices [Doctoral thesis]. Universiti Malaya. http://studentsrepo.um.edu.my/7494/.