Ruitian He, Kai Luo
Lithium argyrodite electrolyte is widely regarded as one of the most promising solid electrolytes due to its high Li-ion conductivity, non-flammability and other favourable properties. Nevertheless, it becomes thermodynamically unstable in contact with metallic lithium, resulting in the formation of a solid electrolyte interphase (SEI) containing hazardous species, while the intrinsic mechanisms remain unknown. This study aims to elucidate atomistic insights into the interfacial interactions, charge transfer and amorphous structural evolution within the Li/Li 6 PS 5 Cl/Li symmetric cell. Machine learning-based molecular dynamics (MLMD), trained using data from first-principles calculations, is employed to perform isothermal simulations at 300 and 350 K, respectively. Comprehensive investigations into interfacial reactions are conducted to reveal the spatiotemporal distribution of reduction reaction products of PS n 3− groups and the fraction of reduction reactions. Simultaneously, the oxidation of lithium atoms is observed in the metallic anode, particularly in regions adjacent to the central electrolyte. Additionally, the structural evolution of the symmetric cell is characterized by analyzing atomic trajectories and radial distribution functions. A two-stage Li-ion diffusion process is identified, featuring an initially rapid diffusion rate accompanied by a pronounced charge difference between the Li metal and the electrolyte, followed by a quasi-steady slower diffusion stage with a gradually diminished charge difference. Upon elevating the temperature from 300 to 350 K, both the reduction reactions and Li-ion migration are accelerated, as evidenced by the greater amount of reduction products and the higher diffusion coefficient and conductivity of Li-ions.