Hierarchical Porous Carbon Spheres for High-Performance Na-O<sub>2</sub> Batteries.

Sun, Bing; Kretschmer, Katja; Xie, Xiuqiang; Munroe, Paul; Peng, Zhangquan; Wang, Guoxiu · Adv Mater · 2017

basic_science · Level V

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Abstract

As a new family member of room-temperature aprotic metal-O<sub>2</sub> batteries, Na-O<sub>2</sub> batteries, are attracting growing attention because of their relatively high theoretical specific energy and particularly their uncompromised round-trip efficiency. Here, a hierarchical porous carbon sphere (PCS) electrode that has outstanding properties to realize Na-O<sub>2</sub> batteries with excellent electrochemical performances is reported. The controlled porosity of the PCS electrode, with macropores formed between PCSs and nanopores inside each PCS, enables effective formation/decomposition of NaO<sub>2</sub> by facilitating the electrolyte impregnation and oxygen diffusion to the inner part of the oxygen electrode. In addition, the discharge product of NaO<sub>2</sub> is deposited on the surface of individual PCSs with an unusual conformal film-like morphology, which can be more easily decomposed than the commonly observed microsized NaO<sub>2</sub> cubes in Na-O<sub>2</sub> batteries. A combination of coulometry, X-ray diffraction, and in situ differential electrochemical mass spectrometry provides compelling evidence that the operation of the PCS-based Na-O<sub>2</sub> battery is underpinned by the formation and decomposition of NaO<sub>2</sub> . This work demonstrates that employing nanostructured carbon materials to control the porosity, pore-size distribution of the oxygen electrodes, and the morphology of the discharged NaO<sub>2</sub> is a promising strategy to develop high-performance Na-O<sub>2</sub> batteries.