Lithium ion conducting membrane based on K-carrageenan complexed with lithium bromide and its electrochemical applications

被引:0
作者
I. Arockia Mary
S. Selvanayagam
S. Selvasekarapandian
S. R. Srikumar
T. Ponraj
V. Moniha
机构
[1] Government Arts College,Department of Physics
[2] Melur,Department of Physics
[3] Holy Cross College,Department of Physics
[4] Materials Research Centre,Department of Physics
[5] Bharathiar University,Department of Physics
[6] Kalasalingam Academy of Research and Education,Centre for Research and Post Graduate Studies in Physics
[7] N.G.M College,undefined
[8] Ayya Nadar Janaki Ammal College,undefined
来源
Ionics | 2019年 / 25卷
关键词
Biopolymer; Lithium bromide; Conductivity; Amorphous nature; Li-ion battery;
D O I
暂无
中图分类号
学科分类号
摘要
Lithium conducting materials play a major role in developing electrochemical devices. Green materials have gained much attention in order to face an energy crisis and global warming. Many researchers took effort to develop biopolymer electrolyte-based electrochemical devices instead of the synthetic polymer due to its high cost and not being environmentally green. K-carrageenan membranes with different concentrations of lithium bromide (LiBr) have been prepared by a solution casting technique and characterized by XRD, FTIR, DSC, and AC impedance technique. One gram of K-carrageenan with 0.5 wt% of LiBr has the highest conductivity as 3.43 × 10−3 Scm−1 at room temperature, and it has high amorphous nature as per the powder XRD results. FTIR confirms the complex formation between LiBr and K-carrageenan. The shift in glass transition temperature (Tg) of the membrane is observed from the DSC. The highest-conducting polymer electrolyte has a glass transition temperature of 44.55 °C. The DC polarization technique proves that the conductivity is due to ions. Lithium ion–conducting battery has been constructed using the highest-conducting biopolymer electrolyte membrane, and its output voltage is measured.
引用
收藏
页码:5839 / 5855
页数:16
相关论文
共 196 条
  • [21] Selvasekarapandian S(1996)Conductive bio-polymer electrolyte iota-carrageenan with ammonium nitrate for application in electrochemical devices Polymer 37 1371-1376
  • [22] Sornalatha M(2014)Electrical double layer capacitor with proton conducting K-carrageenan chitosan electrolytes Ionics 20 1391-1398
  • [23] Sujithra KS(2014)Perspectives for solid biopolymer electrolytes in dye-sensitized solar cell and battery application Journal of Applied Polymer Science 132 n/a-n/a-154
  • [24] Monisha S(2016)Carrageenan and its application in drug delivery Ionics 25 141-2790
  • [25] Selvalakshmi S(2017)K-carrageenan: biological properties, chemical modifications, and structural analysis- a review Ionics 23 2781-3875
  • [26] Mathavan T(2018)Water absorption and states of water in semi crystalline poly (vinyl alcohol) films Ionics 24 3861-47
  • [27] Selvasekarapandian S(2017)AC impedance studies on proton conducting PAN-NH Carbohydr Polym 157 38-3388
  • [28] Premalatha M(2017)SCN polymer electrolytes Ionics 23 3377-1587
  • [29] Kumar L. Sampath(2014)Effect of propylene carbonate on the ionic conductivity of polyacrylonitrile-based solid polymer electrolytes J Environ Chem Eng 2 1578-44
  • [30] Selvin P. Christopher(1986)Preparation and characterization of proton-conducting polymer electrolyte based on PVA, amino acid proline, and NH Solid State Ionics 20 31-1095