Boosting the interfacial superionic conduction of halide solid electrolytes for all-solid-state batteries.

Kwak, Hiram; Kim, Jae-Seung; Han, Daseul; Kim, Jong Seok; Park, Juhyoun; Kwon, Gihan; Bak, Seong-Min; Heo, Unseon et al. · Nat Commun · 2023

basic_science · Level V

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Abstract

Designing highly conductive and (electro)chemical stable inorganic solid electrolytes using cost-effective materials is crucial for developing all-solid-state batteries. Here, we report halide nanocomposite solid electrolytes (HNSEs) ZrO<sub>2</sub>(-ACl)-A<sub>2</sub>ZrCl<sub>6</sub> (A = Li or Na) that demonstrate improved ionic conductivities at 30 °C, from 0.40 to 1.3 mS cm<sup>-1</sup> and from 0.011 to 0.11 mS cm<sup>-1</sup> for Li<sup>+</sup> and Na<sup>+</sup>, respectively, compared to A<sub>2</sub>ZrCl<sub>6</sub>, and improved compatibility with sulfide solid electrolytes. The mechanochemical method employing Li<sub>2</sub>O for the HNSEs synthesis enables the formation of nanostructured networks that promote interfacial superionic conduction. Via density functional theory calculations combined with synchrotron X-ray and <sup>6</sup>Li nuclear magnetic resonance measurements and analyses, we demonstrate that interfacial oxygen-substituted compounds are responsible for the boosted interfacial conduction mechanism. Compared to state-of-the-art Li<sub>2</sub>ZrCl<sub>6</sub>, the fluorinated ZrO<sub>2</sub>-2Li<sub>2</sub>ZrCl<sub>5</sub>F HNSE shows improved high-voltage stability and interfacial compatibility with Li<sub>6</sub>PS<sub>5</sub>Cl and layered lithium transition metal oxide-based positive electrodes without detrimentally affecting Li<sup>+</sup> conductivity. We also report the assembly and testing of a Li-In||LiNi<sub>0.88</sub>Co<sub>0.11</sub>Mn<sub>0.01</sub>O<sub>2</sub> all-solid-state lab-scale cell operating at 30 °C and 70 MPa and capable of delivering a specific discharge of 115 mAh g<sup>-1</sup> after almost 2000 cycles at 400 mA g<sup>-1</sup>.