Multishelled CaO Microspheres Stabilized by Atomic Layer Deposition of Al<sub>2</sub> O<sub>3</sub> for Enhanced CO<sub>2</sub> Capture Performance.

Armutlulu, Andac; Naeem, Muhammad Awais; Liu, Hsueh-Ju; Kim, Sung Min; Kierzkowska, Agnieszka; Fedorov, Alexey; Müller, Christoph R · Adv Mater · 2017

basic_science · Level V

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Abstract

CO<sub>2</sub> capture and storage is a promising concept to reduce anthropogenic CO<sub>2</sub> emissions. The most established technology for capturing CO<sub>2</sub> relies on amine scrubbing that is, however, associated with high costs. Technoeconomic studies show that using CaO as a high-temperature CO<sub>2</sub> sorbent can significantly reduce the costs of CO<sub>2</sub> capture. A serious disadvantage of CaO derived from earth-abundant precursors, e.g., limestone, is the rapid, sintering-induced decay of its cyclic CO<sub>2</sub> uptake. Here, a template-assisted hydrothermal approach to develop CaO-based sorbents exhibiting a very high and cyclically stable CO<sub>2</sub> uptake is exploited. The morphological characteristics of these sorbents, i.e., a porous shell comprised of CaO nanoparticles coated by a thin layer of Al<sub>2</sub> O<sub>3</sub> (<3 nm) containing a central void, ensure (i) minimal diffusion limitations, (ii) space to accompany the substantial volumetric changes during CO<sub>2</sub> capture and release, and (iii) a minimal quantity of Al<sub>2</sub> O<sub>3</sub> for structural stabilization, thus maximizing the fraction of CO<sub>2</sub> -capture-active CaO.