SCOBY-based bacterial cellulose as free standing electrodes for safer, greener and cleaner energy storage technology

被引:2
|
作者
Hamsan, Muhamad Hafiz [1 ]
Halim, Norhana Abdul [1 ]
Demon, Siti Zulaikha Ngah [1 ,2 ]
Sa'aya, Nurul Syahirah Nasuha [3 ]
Kadir, Mohd Fakhrul Zamani [4 ,5 ]
Abidin, Zul Hazrin Zainal [6 ]
Poad, Nursaadah Ahmad [3 ]
Kasim, Nurul Farhana Abu [3 ]
Razali, Nur Amira Mamat [3 ]
Aziz, Shujahadeen B. [7 ,8 ]
Ahmad, Khairol Amali [9 ]
Miskon, Azizi [9 ]
Nor, Norazman Mohamad [9 ]
机构
[1] Natl Def Univ Malaysia, Ctr Def Fdn Studies, Dept Phys, Kuala Lumpur 57000, Malaysia
[2] Natl Def Univ Malaysia, Ctr Tropicalizat, Kuala Lumpur 57000, Malaysia
[3] Natl Def Univ Malaysia, Fac Def Sci & Technol, Kuala Lumpur, Malaysia
[4] Univ Malaya, Fac Sci, Phys Dept, Kuala Lumpur 50603, Malaysia
[5] Univ Malaya, Ctr Ion Liquids UMCiL, Kuala Lumpur 50603, Malaysia
[6] Univ Malaya, Ctr Ion Univ Malaya CIUM, Fac Sci, Dept Phys, Kuala Lumpur 50603, Malaysia
[7] Univ Sulaimani, Coll Sci, Phys Dept, Hameed Majid Adv Polymer Mat Res Lab, Qlyasan St, Sulaimani 46001, Iraq
[8] Univ Human Dev, Dev Ctr Res & Training DCRT, Sulaymaniyah 46001, Iraq
[9] Natl Def Univ Malaysia, Fac Engn, Kuala Lumpur 57000, Malaysia
关键词
Bacterial cellulose; EDLC; Supercapacitor; Energy storage; Renewable energy; CARBON ELECTRODE; CAPACITANCE;
D O I
10.1016/j.heliyon.2022.e11048
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Bacterial Cellulose (BC) derived from local market or symbiotic culture of bacteria and yeast (SCOBY) was employed as the polymer matrix for hydroxyl multi-walled carbon nanotube (MWCNT-OH)-based electrochemical double-layer capacitor (EDLC). Chitosan (CS)-sodium iodide (NaI)-glycerol (Gly) electrolyte systems were used as the polymer electrolyte. CS-NaI-Gly electrolyte possesses conductivity, potential stability and ionic transference number of (1.20 +/- 0.26) x 10-3 S cm-2, 2.5 V and 0.99, respectively. For the electrodes, MWCNT-OH was observed to be well dispersed in the matrix of BC which was obtained via FESEM analysis. The inclusion of MWCNT-OH reduced the crystallinity of the BC polymeric structure. From EIS measurement, it was verified that the presence of MWCNT-OH decreased the electron transfer resistance of BC-based electrodes. Cyclic voltammetry (CV) showed that the shape of the CV plots changed to a rectangular-like shape plot as more MWCNT were added, thus verifying the capacitive behavior. Various amount of MWCNT-OH was used in the fabrication of the EDLC where it was discovered that more MWCNT-OH leads to a better EDLC performance. The EDLC was tested for 5000 complete charge-discharge cycles. The optimum performance of this low voltage EDLC was obtained with 0.1 g MWCNT where the average specific capacitance was 8.80 F g-1. The maximum power and energy density of the fabricated EDLC were 300 W kg-1 and 1.6 W h kg-1, respectively.
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页数:11
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共 37 条
  • [1] Commercial-Level Energy Storage via Free-Standing Stacking Electrodes
    Liu, Jinghai
    Ji, Lei
    Wang, Xia
    Duan, Limei
    Zhou, Jiaqi
    Jia, Yongfeng
    Zeng, Simei
    Huang, Keke
    Geng, Zhibin
    Wang, Xiyang
    Hou, Changmin
    Wu, Xiaofeng
    Lu, Luhua
    Pei, Zhili
    Chen, Yongsheng
    Zhang, Jun
    Feng, Shouhua
    Zhang, Yuegang
    [J]. MATTER, 2019, 1 (06) : 1694 - 1709
  • [2] High-energy flexible supercapacitors based on free-standing metal oxide electrodes for ammonium ion storage
    Han, Ziying
    Zhang, Xinyu
    Tang, Guilin
    Liang, Jing
    Wu, Wei
    [J]. JOURNAL OF ENERGY STORAGE, 2024, 91
  • [3] Free-standing intrinsically conducting polymer membranes based on cellulose and poly(vinylidene fluoride) for energy storage applications
    Salado, Manuel
    Lanceros-Mendez, Senentxu
    Lizundia, Erlantz
    [J]. EUROPEAN POLYMER JOURNAL, 2021, 144
  • [4] Freestanding bacterial cellulose-polypyrrole nanofibres paper electrodes for advanced energy storage devices
    Li, Shaohui
    Huang, Dekang
    Yang, Junchuan
    Zhang, Bingyan
    Zhang, Xiaofan
    Yang, Guang
    Wang, Mingkui
    Shen, Yan
    [J]. NANO ENERGY, 2014, 9 : 309 - 317
  • [5] Bacterial Cellulose Based Nano-biomaterials for Energy Storage Applications
    Ma Li-Na
    Shi Chuan
    Zhao Ning
    Bi Zhi-Jie
    Guo Xiang-Xin
    Huang Yu-Dong
    [J]. JOURNAL OF INORGANIC MATERIALS, 2020, 35 (02) : 145 - 157
  • [6] Enhancing charge storage capacity of cellulose-sweat-based electrolyte flexible supercapacitors with electrochemically exfoliated free-standing carbon yarn electrodes
    Rafique, Amjid
    Ferreira, Isabel
    Bundaleski, Nenad
    Teodoro, O. M. N. D.
    Baptista, Ana C.
    [J]. FLATCHEM, 2024, 47
  • [7] Carbonaceous matrixes-based free-standing electrode materials for energy storage
    Li, Xuan
    Fan, Binbin
    Wang, Zhongde
    Guan, Guoqing
    [J]. CARBON TRENDS, 2024, 16
  • [8] Cu2NiSnS4 nanosphere array on carbon cloth as free-standing and binder-free electrodes for energy storage
    Pan, Pei
    Chen, Lihui
    Wang, Feng
    Feng, Chuanqi
    Du, Jun
    Yang, Xiong
    Qin, Caiqin
    Ding, Yu
    [J]. ELECTROCHIMICA ACTA, 2018, 260 : 305 - 313
  • [9] Free-standing intrinsically conducting polymer membranes based on cellulose and poly(vinylidene fluoride) for energy storage applications (vol 144, 110240, 2021)
    Salado, Manuel
    Lanceros-Mendez, Senentxu
    Lizundia, Erlantz
    [J]. EUROPEAN POLYMER JOURNAL, 2021, 146
  • [10] Free-Standing 3D-Sponged Nanofiber Electrodes for Ultrahigh-Rate Energy-Storage Devices
    Agostini, Marco
    Lim, Du Hyun
    Brutti, Sergio
    Lindahl, Nildas
    Ahn, Jou Hyeon
    Scrosati, Bruno
    Matic, Aleksandar
    [J]. ACS APPLIED MATERIALS & INTERFACES, 2018, 10 (40) : 34140 - 34146