Literature DB >> 20544750

Atomistic characterisation of Li+ mobility and conductivity in Li(7-x)PS(6-x)Ix argyrodites from molecular dynamics simulations, solid-state NMR, and impedance spectroscopy.

Oliver Pecher1, Shiao-Tong Kong, Thorsten Goebel, Vera Nickel, Katja Weichert, Christof Reiner, Hans-Jörg Deiseroth, Joachim Maier, Frank Haarmann, Dirk Zahn.   

Abstract

The atomistic mechanisms of Li(+) ion mobility/conductivity in Li(7-x)PS(6-x)I(x) argyrodites are explored from both experimental and theoretical viewpoints. Ionic conductivity in the title compound is associated with a solid-solid phase transition, which was characterised by low-temperature differential scanning calorimetry, (7)Li and (127)I NMR investigations, impedance measurements and molecular dynamics simulations. The NMR signals of both isotopes are dominated by anisotropic interactions at low temperatures. A significant narrowing of the NMR signal indicates a motional averaging of the anisotropic interactions above 177+/-2 K. The activation energy to ionic conductivity was assessed from both impedance spectroscopy and molecular dynamics simulations. The latter revealed that a series of interstitial sites become accessible to the Li(+) ions, whilst the remaining ions stay at their respective sites in the argyrodite lattice. The interstitial positions each correspond to the centres of tetrahedra of S/I atoms, and differ only in terms of their common corners, edges, or faces with adjacent PS(4) tetrahedra. From connectivity analyses and free-energy rankings, a specific tetrahedron is identified as the key restriction to ionic conductivity, and is clearly differentiated from local mobility, which follows a different mechanism with much lower activation energy. Interpolation of the lattice parameters as derived from X-ray diffraction experiments indicates a homogeneity range for Li(7-x)PS(6-x)I(x) with 0.97 < or = x < or = 1.00. Within this range, molecular dynamics simulations predict Li(+) conductivity at ambient conditions to vary considerably.

Entities:  

Year:  2010        PMID: 20544750     DOI: 10.1002/chem.201000501

Source DB:  PubMed          Journal:  Chemistry        ISSN: 0947-6539            Impact factor:   5.236


  5 in total

Review 1.  Molecular dynamics simulation of ionic conductors: perspectives and limitations.

Authors:  Dirk Zahn
Journal:  J Mol Model       Date:  2010-10-31       Impact factor: 1.810

2.  Cation Disorder and Large Tetragonal Supercell Ordering in the Li-Rich Argyrodite Li7Zn0.5SiS6.

Authors:  Bernhard T Leube; Christopher M Collins; Luke M Daniels; Benjamin B Duff; Yun Dang; Ruiyong Chen; Michael W Gaultois; Troy D Manning; Frédéric Blanc; Matthew S Dyer; John B Claridge; Matthew J Rosseinsky
Journal:  Chem Mater       Date:  2022-04-18       Impact factor: 10.508

3.  Optimal Composition of Li Argyrodite with Harmonious Conductivity and Chemical/Electrochemical Stability: Fine-Tuned Via Tandem Particle Swarm Optimization.

Authors:  Sunggeun Shim; Woon Bae Park; Jungmin Han; Jinhyeok Lee; Byung Do Lee; Jin-Woong Lee; Jung Yong Seo; S J Richard Prabakar; Su Cheol Han; Satendra Pal Singh; Chan-Cuk Hwang; Docheon Ahn; Sangil Han; Kyusung Park; Kee-Sun Sohn; Myoungho Pyo
Journal:  Adv Sci (Weinh)       Date:  2022-07-21       Impact factor: 17.521

4.  Structural Disorder in Li6PS5I Speeds 7Li Nuclear Spin Recovery and Slows Down 31P Relaxation-Implications for Translational and Rotational Jumps as Seen by Nuclear Magnetic Resonance.

Authors:  M Brinek; C Hiebl; K Hogrefe; I Hanghofer; H M R Wilkening
Journal:  J Phys Chem C Nanomater Interfaces       Date:  2020-09-29       Impact factor: 4.126

5.  Opening Diffusion Pathways through Site Disorder: The Interplay of Local Structure and Ion Dynamics in the Solid Electrolyte Li6+xP1-xGexS5I as Probed by Neutron Diffraction and NMR.

Authors:  Katharina Hogrefe; Nicolò Minafra; Isabel Hanghofer; Ananya Banik; Wolfgang G Zeier; H Martin R Wilkening
Journal:  J Am Chem Soc       Date:  2022-01-20       Impact factor: 15.419

  5 in total

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