Computation of Ionic Conductivity at NASICON Solid Electrolytes (II) Effects of mid-Na Sites on Na1-Na2 Conduction Paths

NASICON 고체 전해질의 이온 전도도 계산 (II) Na1-Na2 전도 경로에 미치는 mid-Na의 영향

  • 최진삼 (경상대학교 무기재료공학과) ;
  • 서양곤 (경상대학교 화학공학과) ;
  • 강은태 (경상대학교 무기재료공학과)
  • Published : 1995.11.01

Abstract

The ionic conductivity of NASICON solid electrolytes was simulated by using Monte Carlo Method (MCM). There were included two conduction paths: (1) Na1-Na2 and (2) Na1-Na2 including Na2-Na2. We assumed that mid-Na ions provde an additional driving force for Na mobile ions due to the interionic repulsion between Na1 and Na2 ions. The inflection point of vacancy availability factor, V has been shown at nearby x=2, the maximum mid-Na ions. The inflection point of vacancy availability factor, V has been shown at nearby x=2, the maximum mid-Na sites are occupied. The effective jump frequency factor, V has been shown at nearby x=2, the maximum mid-Na sites are occupied. The effective jump frequency factor, W increased rapidly with the composition at low temperature, but decreased at high temperature region. On Na1-Na2 conduction path, the minimum of charge correlation factor, fc and the maximum of $\sigma$T were appeared at x=2.0. this indicated that mid-Na ions affect on the high ionic conductivity behavior. At the whole range of NASICON composition, 1n $\sigma$T vs. 1/T* plots have been shown Arrhenius behavior but 1n (VWFc) vs. 1/T* have been shown the Arrhenius type tendency at x=2, which mid-Na is being the maximum. The results of MCM agreed with the experimental one when the chosen saddle point value was 6$\varepsilon$ : 3$\varepsilon$. Here the calculated characteristic parameter of materials, K and the phase transition temperature were -4.001$\times$103 and 178$^{\circ}C$ (1/T*=1.92, 1000/T=2.22), respectively.

Keywords

References

  1. Beta-Aluminas and Beta Batteries G. Staikov
  2. 요업학회지 v.32 no.8 NASICON 고체 전해질의 이온 전도도 계산.(1) mid-Na의 영향을 고려하지 않은 경우 최진삼;서양곤;강은태
  3. 요업학회지 v.31 no.3 Monte Carlo방법에 의한 유리 고체 전해질의 이온 전도도에 관한 전산 모사 최진삼;서양곤;강은태
  4. Synthetic Metals v.71 Computer Simulation of Ionic Conductivity in NASICON by using Monte Carlo Method Jin Sam Choi;Yang Gon Seo;Eun-Tae Kang
  5. Mat.Res.Bull. v.11 Crystal Structures and Crystal Chemistry in the System $Na_{1+x}Zr_2SixP_{3-x}O_{12}$ H.Y-P. Hong
  6. Mat.Res.Bull v.20 NASICON Solid Electrolytes, Part I: The Na+ diffusion Path and its Relation to the Structure H. Kohler;H. Schulz
  7. Mat.Res.Bull v.21 NASICON Solid Electrolytes, Part II: X-ray Diffraction Experiments on Sodium-zirconium-phosphate Single Crystals at 295K and at 993K H. Kohler;H. Schulz
  8. Solid State Ionics v.3/4 Thermal Expansion of the Framework in NASICON-Type Structure and Its Relation to Na+ Mobillity D T. Qui;J.J. Capponi;M. Gondrand;M. Saib;J.C. Joubert;R.D. Shannon
  9. Solid State Ionics v.28-30 Stoichiometry-Structure-Fast Ion Conduction in the NASICON Solid Solution J.P. Boilot;Ph. Colomban;G. Collin
  10. Superionic Solids and Solid Electrolytes Recent Trends A.L. Lasker;S. Chandra
  11. J Solid State Chem v.39 Crystal Structure and Ionic Conductivity in $Na_4Zr_2Si_3PO_12$ D. Tran Qui;J.J. Capponi;J.C. Joubert
  12. J.Solid State Chem. v.73 Relation Structure-Fast Ion Conduction in the NASICON Solid Solution J.P. Boilot;G. Colhn;Ph. Colomban
  13. Solid State Ionics v.53;56 Electrochemical Studies of Mixed Valence NASICON O.Tillement;J. Angenault;J.C.C. Couturier;M.Quarton
  14. Mat Res.Bull v.22 Crystal Structure of the true NASICON:Na3Zr2Si2PO12 J P Boilot;G. Collin;Ph Colomban
  15. Phil Mag. v.35 no.2 Computer Simulation of Sodium Diffusion in β"-Alumina G.E. Murch;R.J. Thorn
  16. Phil.Mag v.36 no.3 A Monte Carlo Study of Sodium Diffusion in β-alumina G.E. Murch;R.J. Thorn
  17. Mat. Res.Bull v.14 Phase Transition in NASICON $(Na_3ZR_2Si_2PO_12)$ U. von Alpen;M.F. Bell;W. Wichelhaus
  18. Solid State Ionics v.21 Orientational Disorder Glass/Crystal Transition and Superionic Conductivity in NASICON Ph. Colomban
  19. Mat Res.Bull v.14 Phase Transformation in $Na_{1+x} Zr_2 Six P_{3-x}O_12$ Compounds J.P. Boilot;J.P. Salani