Boosting Energy Efficiency and Stability of Li-CO<sub>2</sub> Batteries via Synergy between Ru Atom Clusters and Single-Atom Ru-N<sub>4</sub> sites in the Electrocatalyst Cathode.

Lin, Jiangfeng; Ding, Jingnan; Wang, Haozhi; Yang, Xinyi; Zheng, Xuerong; Huang, Zechuan; Song, Wanqing; Ding, Jia et al. · Adv Mater · 2022

basic_science · Level V

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Abstract

The Li-CO<sub>2</sub> battery is a novel strategy for CO<sub>2</sub> capture and energy-storage applications. However, the sluggish CO<sub>2</sub> reduction and evolution reactions cause large overpotential and poor cycling performance. Herein, a new catalyst containing well-defined ruthenium (Ru) atomic clusters (Ru<sub>AC</sub> ) and single-atom Ru-N<sub>4</sub> (Ru<sub>SA</sub> ) composite sites on carbon nanobox substrate (Ru<sub>AC+SA</sub> @NCB) (NCB = nitrogen-doped carbon nanobox) is fabricated by utilizing the different complexation effects between the Ru cation and the amine group (NH<sub>2</sub> ) on carbon quantum dots or nitrogen moieties on NCB. Systematic experimental and theoretical investigations demonstrate the vital role of electronic synergy between Ru<sub>AC</sub> and Ru-N<sub>4</sub> in improving the electrocatalytic activity toward the CO<sub>2</sub> evolution reaction (CO<sub>2</sub> ER) and CO<sub>2</sub> reduction reaction (CO<sub>2</sub> RR). The electronic properties of the Ru-N<sub>4</sub> sites are essentially modulated by the adjacent Ru<sub>AC</sub> species, which optimizes the interactions with key reaction intermediates thereby reducing the energy barriers in the rate-determining steps of the CO<sub>2</sub> RR and CO<sub>2</sub> ER. Remarkably, the Ru<sub>AC+SA</sub> @NCB-based cell displays unprecedented overpotentials as low as 1.65 and 1.86 V at ultrahigh rates of 1 and 2 A g<sup>-1</sup> , and twofold cycling lifespan than the baselines. The findings provide a novel strategy to construct catalysts with composite active sites comprising multiple atom assemblies for high-performance metal-CO<sub>2</sub> batteries.