Manipulating the diffusion energy barrier at the lithium metal electrolyte interface for dendrite-free long-life batteries.

Pokharel, Jyotshna; Cresce, Arthur; Pant, Bharat; Yang, Moon Young; Gurung, Ashim; He, Wei; Baniya, Abiral; Lamsal, Buddhi Sagar et al. · Nat Commun · 2024

basic_science · Level V

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Abstract

Constructing an artificial solid electrolyte interphase (SEI) on lithium metal electrodes is a promising approach to address the rampant growth of dangerous lithium morphologies (dendritic and dead Li<sup>0</sup>) and low Coulombic efficiency that plague development of lithium metal batteries, but how Li<sup>+</sup> transport behavior in the SEI is coupled with mechanical properties remains unknown. We demonstrate here a facile and scalable solution-processed approach to form a Li<sub>3</sub>N-rich SEI with a phase-pure crystalline structure that minimizes the diffusion energy barrier of Li<sup>+</sup> across the SEI. Compared with a polycrystalline Li<sub>3</sub>N SEI obtained from conventional practice, the phase-pure/single crystalline Li<sub>3</sub>N-rich SEI constitutes an interphase of high mechanical strength and low Li<sup>+</sup> diffusion barrier. We elucidate the correlation among Li<sup>+</sup> transference number, diffusion behavior, concentration gradient, and the stability of the lithium metal electrode by integrating phase field simulations with experiments. We demonstrate improved reversibility and charge/discharge cycling behaviors for both symmetric cells and full lithium-metal batteries constructed with this Li<sub>3</sub>N-rich SEI. These studies may cast new insight into the design and engineering of an ideal artificial SEI for stable and high-performance lithium metal batteries.