Atomistic Characterisation of Li+ Mobility and Conductivity in Li7-xPS6-xIx Argyrodites from Molecular Dynamics Simulations, Solid-State NMR, and Impedance Spectroscopy

被引:77
作者
Pecher, Oliver [2 ]
Kong, Shiao-Tong [1 ]
Goebel, Thorsten [2 ]
Nickel, Vera [1 ]
Weichert, Katja [3 ]
Reiner, Christof [1 ]
Deiseroth, Hans-Joerg [1 ]
Maier, Joachim [3 ]
Haarmann, Frank [4 ]
Zahn, Dirk [5 ]
机构
[1] Univ Siegen, D-57068 Siegen, Germany
[2] Max Planck Inst Chem Phys Fester Stoffe, D-01187 Dresden, Germany
[3] Max Planck Inst Festkorperforsch, D-70569 Stuttgart, Germany
[4] Rhein Westfal TH Aachen, Inst Anorgan Chem, D-52074 Aachen, Germany
[5] Univ Erlangen Nurnberg, Comp Chem Ctr, Lehrstuhl Theoret Chem, D-91052 Erlangen, Germany
关键词
argyrodites; ionic mobility; lithium; molecular dynamics; NMR spectroscopy; PHASE-TRANSITIONS; CRYSTAL-STRUCTURE; MAS;
D O I
10.1002/chem.201000501
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The atomistic mechanisms of Li+ ion mobility/conductivity in Li7-xPS6-xIx 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, Li-7 and I-127 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 PS4 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 Li7-xPS6-xIx with 0.97 <= x <= 1.00. Within this range, molecular dynamics simulations predict Li+ conductivity at ambient conditions to vary considerably.
引用
收藏
页码:8347 / 8354
页数:8
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