Investigation of Lithium Transference Number in PMMA Composite Polymer Electrolytes Using Monte Carlo (MC) Simulation and Recurrence Relation

被引:4
作者
Koh, Renwei Eric [1 ]
Sun, Cha Chee [1 ]
Yap, Yee Ling [1 ]
Cheang, Pei Ling [1 ]
You, Ah Heng [1 ]
机构
[1] Multimedia Univ, Fac Engn & Technol, Melaka 75450, Malaysia
关键词
Solid Polymer Electrolytes; Monte Carlo Simulation; Transference Number; Recurrence Relation; Ionic Conductivity; IONIC-CONDUCTIVITY ENHANCEMENT; SOLID POLYMER; POLY(METHYL METHACRYLATE); PLASTICIZER; FILLERS; PERFORMANCE; RELAXATION; PARTICLES; MEMBRANES;
D O I
10.33961/jecst.2020.01459
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
In this study, Monte Carlo (MC) simulation is conducted with recurrence relation to study the effect of SiO2 with different particle size and their roles in enhancing the ionic conductivity and lithium transference number of PMMA composite polymer electrolytes (CPEs). The MC simulated ionic conductivity is verified with the measurements from Electrochemical Impedance Spectroscopy (EIS). Then, the lithium transference number of CPEs is calculated using recurrence relation with the MC simulated current density and the reference transference number obtained. Incorporation of micron-size SiO2 (<= 10 mu m) fillers into the mixture improves the ionic conductivity from 8.60 x 10(-5) S/cm to 2.35 x 10(-4) S/cm. The improvement is also observed on the lithium transference number, where it increases from 0.088 to 0.3757. Furthermore, the addition of nano-sized SiO2 (<= 12 nm) fillers further increases the ionic conductivity up towards 3.79 x 10(-4) S/cm and lithium transference number of 0.4105. The large effective surface area of SiO2 fillers is responsible for the improvement in ionic conductivity and the transference number in PMMA composite polymer electrolytes.
引用
收藏
页码:217 / 224
页数:8
相关论文
共 32 条
  • [1] Solid polymer electrolytes: materials designing and all-solid-state battery applications: an overview
    Agrawal, R. C.
    Pandey, G. P.
    [J]. JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2008, 41 (22)
  • [2] Superionic solids: composite electrolyte phase - an overview
    Agrawal, RC
    Gupta, RK
    [J]. JOURNAL OF MATERIALS SCIENCE, 1999, 34 (06) : 1131 - 1162
  • [3] High-performance electrolyte membranes for plastic lithium batteries
    Appetecchi, GB
    Croce, F
    Scrosati, B
    [J]. JOURNAL OF POWER SOURCES, 1997, 66 (1-2) : 77 - 82
  • [4] Ionic conductivity of plasticized (PEO)-LiCF3SO3 electrolytes
    Bandara, LRAK
    Dissanayake, MAKL
    Mellander, BE
    [J]. ELECTROCHIMICA ACTA, 1998, 43 (10-11) : 1447 - 1451
  • [5] Chew KW, 2011, INT J ELECTROCHEM SC, V6, P5792
  • [6] Effect of concentration and grain size of alumina filler on the ionic conductivity enhancement of the (PEO)9LiCF3SO3:Al2O3 composite polymer electrolyte
    Dissanayake, MAKL
    Jayathilaka, PARD
    Bokalawala, RSP
    Albinsson, I
    Mellander, BE
    [J]. JOURNAL OF POWER SOURCES, 2003, 119 : 409 - 414
  • [7] POLYMERIC SOLID ELECTROLYTES - DYNAMIC BOND PERCOLATION AND FREE-VOLUME MODELS FOR DIFFUSION
    DRUGER, SD
    RATNER, MA
    NITZAN, A
    [J]. SOLID STATE IONICS, 1983, 9-10 (DEC) : 1115 - 1120
  • [8] ELECTROCHEMICAL MEASUREMENT OF TRANSFERENCE NUMBERS IN POLYMER ELECTROLYTES
    EVANS, J
    VINCENT, CA
    BRUCE, PG
    [J]. POLYMER, 1987, 28 (13) : 2324 - 2328
  • [9] Electrochemical investigation of gel polymer electrolytes based on poly(methyl methacrylate) and dimethylacetamide for application in Li-ion batteries
    Faridi, Mohammad
    Naji, Leila
    Kazemifard, Sholeh
    Pourali, Nasim
    [J]. CHEMICAL PAPERS, 2018, 72 (09) : 2289 - 2300
  • [10] The effect of nano-particle TiO2 fillers on structure and transport in polymer electrolytes
    Forsyth, M
    MacFarlane, DR
    Best, A
    Adebahr, J
    Jacobsson, P
    Hill, AJ
    [J]. SOLID STATE IONICS, 2002, 147 (3-4) : 203 - 211