Defect-Engineered Hexagonal Boron Nitride Enables Ionic Conduction for Lithium Metal Batteries.

Wu, Yecun; Tzeng, Yan-Kai; Chen, Hao; Xu, Kun; Yan, Gangbin; Taniguchi, Takashi; Watanabe, Kenji; Majumdar, Arun et al. · Nano Lett · 2026

basic_science · Level V

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Abstract

The practical implementation of lithium metal anodes has been hindered by uncontrollable dendrite formation and interfacial instability. This study presents a defect engineering of multiplayer hexagonal boron nitride (h-BN) that enhances ionic conductivity through argon ion irradiation. A cell-level demonstration was performed using commercially available, large-area CVD-grown h-BN films subjected to industrial-scale argon ion implantation. Direct evidence was provided by integration of these exfoliated flakes into a hybrid microfluidic-microelectronic chip, confirming that controlled vacancy defects transform h-BN into an efficient lithium-ion conductor while preserving its intrinsic electrical insulation. The results confirmed improved lithium-metal anode stability, achieving dendrite-free cycling with Li plating/stripping Coulombic efficiencies exceeding 99.5% for about 1000 cycles. Further assembly of irradiated h-BN in lithium-sulfur batteries effectively mitigates the polysulfide shuttle effect, sustaining over 97% specific capacity around 300 cycles. These results establish a robust, scalable interface engineering route for next-generation lithium metal batteries that combine high ionic transport with excellent electrical insulation.