Wood cellulose-based thin gel electrolyte with enhanced ionic conductivity

被引:0
|
作者
Aswani Poosapati
Karla Negrete
Nathaniel Jang
Liangbing Hu
Yucheng Lan
Deepa Madan
机构
[1] University of Maryland,Department of Mechanical Engineering
[2] University of Maryland,Department of Materials Science and Engineering
[3] Morgan State University,Department of Physics
来源
MRS Communications | 2019年 / 9卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Polymeric electrolytes have attracted recent research interest because they offer the advantages of being safe and non-flammable, having no dendrite formation, and having no possibility of leakage. The incorporation of synthetic polymers to gel electrolytes has numerous disadvantages: for instance, the required preparation time for creating gel electrolytes from synthetic polymers is dubious and lengthy. Additionally, the conventional pristine polymer gel electrolyte layer has been reported to have low ionic conductivity. This work is focused on preparing a thin flexible gel electrolyte layer by using a naturally occurring wood-based nanofiber cellulose (NFC) hydrogel, to overcome the energy and time consumption of conventional processes. In addition, we use polyvinyl alcohol (PVA) as an additive to the NFC hydrogel in controlled amounts to fabricate a stable thin gel electrolyte layer. By using x-ray diffraction, optical microscopy, and Fourier transform infrared spectra studies, we were able to further our understanding of the microstructure of the films: i.e., the penetration and cross-linking (changes in the bonding structures) of semi-crystalline PVA and hydrogel to form a flexible gel electrolyte layer. The NFC hydrogel-PVA films resulted in much higher ionic conductivity values when compared to other existing pristine polymer electrolytes. The addition of KOH to the NFC hydrogel-PVA further enhanced the ionic conductivity. The best ionic conductivity recorded was 75 mS/cm for films with thickness in the range of 200–350 µm, which is comparable to the highest reported ionic conductivity values of gel electrolytes.
引用
收藏
页码:1015 / 1021
页数:6
相关论文
共 50 条
  • [41] Enhanced ionic conductivity in novel nanocomposite gel polymer electrolyte based on intercalation of PMMA into layered LiV3O8
    Madhuryya Deka
    Ashok Kumar
    Journal of Solid State Electrochemistry, 2010, 14 : 1649 - 1656
  • [42] Enhanced ionic conductivity in novel nanocomposite gel polymer electrolyte based on intercalation of PMMA into layered LiV3O8
    Deka, Madhuryya
    Kumar, Ashok
    JOURNAL OF SOLID STATE ELECTROCHEMISTRY, 2010, 14 (09) : 1649 - 1656
  • [43] Aligned regenerated cellulose-based nanofluidic fibers with ultrahigh ionic conductivity and underwater stability for osmotic energy harvesting
    Zhou, Binglin
    Zou, Jie
    Lin, Zewan
    Yuan, Zhanhong
    Qin, Xingzhen
    Chen, Pan
    Ye, Dongdong
    CHEMICAL ENGINEERING JOURNAL, 2023, 457
  • [44] Enhanced ionic conductivity of sulfide-based solid electrolyte by incorporating lanthanum sulfide
    Liu, Zhanqiang
    Tang, Yufeng
    Lu, Xujie
    Ren, Guohao
    Huang, Fuqiang
    CERAMICS INTERNATIONAL, 2014, 40 (10) : 15497 - 15501
  • [45] High-Performance Flexible Supercapacitors Based on Ionogel Electrolyte with an Enhanced Ionic Conductivity
    Kim, Donggun
    Kannan, Padmanathan Karthick
    Chung, Chan-Hwa
    CHEMISTRYSELECT, 2018, 3 (07): : 2190 - 2195
  • [46] Enhanced ionic conductivity of sulfide solid electrolyte with high lithium content based on cryomilling
    Jia, Zhenggang
    Zhang, Xuexi
    Qian, Mingfang
    Jin, Yingmin
    Xiong, Yueping
    ELECTROCHEMISTRY COMMUNICATIONS, 2023, 147
  • [47] Development of cellulose-based conductive fabrics with electrical conductivity and flexibility
    Kim, Hyunjin
    Yi, Joon-Yeop
    Kim, Byung-Gee
    Song, Ji Eun
    Jeong, Hee-Jin
    Kim, Hye Rim
    PLOS ONE, 2020, 15 (06):
  • [48] Deposition of Cellulose-Based Thin Films on Flexible Substrates
    Schlemmer, Werner
    Zankel, Armin
    Niegelhell, Katrin
    Hobisch, Mathias
    Suessenbacher, Michael
    Zajki-Zechmeister, Krisztina
    Weissl, Michael
    Reishofer, David
    Plank, Harald
    Spirk, Stefan
    MATERIALS, 2018, 11 (12)
  • [49] Cellulose-based fiber spinning processes using ionic liquids
    Azimi, Bahareh
    Maleki, Homa
    Gigante, Vito
    Bagherzadeh, Roohollah
    Mezzetta, Andrea
    Milazzo, Mario
    Guazzelli, Lorenzo
    Cinelli, Patrizia
    Lazzeri, Andrea
    Danti, Serena
    CELLULOSE, 2022, 29 (06) : 3079 - 3129
  • [50] Cellulose-based fiber spinning processes using ionic liquids
    Bahareh Azimi
    Homa Maleki
    Vito Gigante
    Roohollah Bagherzadeh
    Andrea Mezzetta
    Mario Milazzo
    Lorenzo Guazzelli
    Patrizia Cinelli
    Andrea Lazzeri
    Serena Danti
    Cellulose, 2022, 29 : 3079 - 3129