Mohsin Abbas, Fahim Karimi, Nicolas De Souza, Dehong Yu, Peter Fouquet, Thomas Klassen, Claudio Pistidda
Elucidating the interplay between anion dynamics and cation transport is essential for the rational design of solid-state ionic conductors. Here, we investigate the relationship between local anion motion and long-range Li + transport in Li 4 ( BH 4 ) ( NH 2 ) 3 by combining quasielastic neutron scattering (QENS) and neutron spin-echo (NSE) spectroscopy with complementary thermal, structural, and electrochemical investigations. Time-of-flight QENS analysis reveals ultrafast reorientational motion of [ BH 4 ] - units within the crystalline lattice, characterized by a low rotational activation barrier of ∼0.16 eV. This barrier is substantially lower than the Li + transport activation energy (∼0.26 eV), demonstrating that thermally activated [ BH 4 ] - reorientation provides a dynamic pathway that promotes Li + hopping through the lattice. In contrast, [ NH 2 ] - anions exhibit limited quasielastic broadening, indicating more restricted dynamics. Upon melting, the emergence of Q-dependent quasielastic broadening reveals translational diffusion of [ BH 4 ] - species, yielding a diffusion coefficient of ∼. This value closely agrees with the Li + diffusion coefficient obtained from ionic conductivity measurements, evidencing a transition from rotation-assisted Li + migration in the solid state to coupled cation-anion diffusion in the molten phase. Complementary NSE measurements directly capture long-range Li + motion on nanosecond timescales, providing a unified molecular-level picture of how anion dynamics regulate ion transport in mixed-anion complex hydrides.