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CaO-Based Nanomaterials Promoted with CaZrO3for High-Temperature Carbon Capture

Authors :
Hashemi, Seyed Mojtaba
Karami, Davood
Mahinpey, Nader
Source :
Industrial & Engineering Chemistry Research; 20220101, Issue: Preprints
Publication Year :
2022

Abstract

Calcium looping is a promising route for decarbonization of carbon-intensive fossil fuel-reliant industries. Development of sorbents with high CO2uptake capacity and cyclic stability is of paramount importance for commercialization of the calcium looping process. In this work, novel CaO-based sorbents stabilized with CaZrO3were produced using the solution combustion synthesis method. The effect of using different fuels (citric acid and β-alanine) on the physical properties and the carbon capture performance of the sorbents was investigated. Citric acid-synthesized sorbents indicated a higher surface area (30.0 m2/g) compared to β-alanine-derived sorbents (9.3 m2/g), resulting in a superior CO2uptake capacity. Sorbents were calcined under mild (850 °C, under 100% N2) and harsh (950 °C, under ∼50% CO2in N2) calcination conditions in 20-cycle experiments. Under harsh calcination conditions, sorbents exhibited a decreased stability over cycles due to sintering and loss of surface area at high temperatures. The CA20-1x sorbent maintained 96 and 57% of its initial uptake capacity after 20 cycles under mild and harsh calcination conditions, respectively. Sorbents were further spheronized and tested for their uptake capacity and stability. Spheronized sorbents exhibited a reduced uptake capacity under similar testing conditions due to diffusion limitations and a broader uptake rate profile. A longer carbonation time was recommended for spheronized sorbents to improve the uptake capacity.

Details

Language :
English
ISSN :
08885885 and 15205045
Issue :
Preprints
Database :
Supplemental Index
Journal :
Industrial & Engineering Chemistry Research
Publication Type :
Periodical
Accession number :
ejs59433440
Full Text :
https://doi.org/10.1021/acs.iecr.2c00121