Disentangling Multiscale Cation-Anion Dynamics in Li4(BH4)(NH2)3 Using Quasielastic Neutron Scattering
Mohsin Abbas1, Fahim Karimi1, Nicolas De Souza2
1Institute of Hydrogen Technology Helmholtz-Zentrum Hereon Geesthacht Germany.
Abstract:
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 transport in 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 units within the crystalline lattice, characterized by a low rotational activation barrier of ∼0.16 eV. This barrier is substantially lower than the transport activation energy (∼0.26 eV), demonstrating that thermally activated reorientation provides a dynamic pathway that promotes hopping through the lattice. In contrast, anions exhibit limited quasielastic broadening, indicating more restricted dynamics. Upon melting, the emergence of Q-dependent quasielastic broadening reveals translational diffusion of species, yielding a diffusion coefficient of ∼. This value closely agrees with the diffusion coefficient obtained from ionic conductivity measurements, evidencing a transition from rotation-assisted migration in the solid state to coupled cation-anion diffusion in the molten phase. Complementary NSE measurements directly capture long-range motion on nanosecond timescales, providing a unified molecular-level picture of how anion dynamics regulate ion transport in mixed-anion complex hydrides.
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