Aqueous miscible organic-layered double hydroxides with improved CO2 adsorption capacity

Potassium-promoted layered double hydroxide (LDH)-derived materials are suitable elevated temperature CO2 adsorbents for pre-combustion CO2 capture. A challenge for the commercialization of LDHs as efficient CO2 adsorbents is their low capacities (ca. 0.5–0.6 mmol/g@400 °C) due to their hydrogen-bon...

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Main Authors: Zhu, X, Chen, C, Shi, Y, O'Hare, D, Cai, N
Format: Journal article
Language:English
Published: Springer 2020
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author Zhu, X
Chen, C
Shi, Y
O'Hare, D
Cai, N
author_facet Zhu, X
Chen, C
Shi, Y
O'Hare, D
Cai, N
author_sort Zhu, X
collection OXFORD
description Potassium-promoted layered double hydroxide (LDH)-derived materials are suitable elevated temperature CO2 adsorbents for pre-combustion CO2 capture. A challenge for the commercialization of LDHs as efficient CO2 adsorbents is their low capacities (ca. 0.5–0.6 mmol/g@400 °C) due to their hydrogen-bonded stacked structure. In this study, the aqueous miscible organic solvent treatment (AMOST) was used to exfoliate Mg3Al–CO3 LDH into nanosheets with a flower-like morphology, resulting in high surface areas of 287 and 212 m2/g for CC1 (washed with ethanol) and CC2 (washed with acetone), respectively. The exfoliated LDH structure exposed more interlayered CO2 active sites and promoters for alkali metal modification. Six impregnation solvents, water, acetone, ethanediol, ethanol, DMAC, and methanol were screened to optimize the CO2 uptake of 20 wt% K2CO3-promoted CC1. K2CO3/CC1(ed) using ethanediol as the impregnation solvent reached a CO2 working capacity of 1.46 mmol/g at 400 °C in the first cycle and 1.23 mmol/g after 10 cycles, twice the capacity of the commercial K2CO3/MG70. Material characterization indicated that the unexpectedly high performance of K2CO3/CC1(ed) could be attributed to the uniform K+ dispersion on the surface of K2CO3/CC1(ed) rather than bulk phase formation and the release of the residual solvent during calcination that could generate more paths for CO2 diffusion.
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spelling oxford-uuid:29ba6797-c036-41de-a15a-1339181da9b62022-04-05T13:51:40ZAqueous miscible organic-layered double hydroxides with improved CO2 adsorption capacityJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:29ba6797-c036-41de-a15a-1339181da9b6EnglishSymplectic ElementsSpringer2020Zhu, XChen, CShi, YO'Hare, DCai, NPotassium-promoted layered double hydroxide (LDH)-derived materials are suitable elevated temperature CO2 adsorbents for pre-combustion CO2 capture. A challenge for the commercialization of LDHs as efficient CO2 adsorbents is their low capacities (ca. 0.5–0.6 mmol/g@400 °C) due to their hydrogen-bonded stacked structure. In this study, the aqueous miscible organic solvent treatment (AMOST) was used to exfoliate Mg3Al–CO3 LDH into nanosheets with a flower-like morphology, resulting in high surface areas of 287 and 212 m2/g for CC1 (washed with ethanol) and CC2 (washed with acetone), respectively. The exfoliated LDH structure exposed more interlayered CO2 active sites and promoters for alkali metal modification. Six impregnation solvents, water, acetone, ethanediol, ethanol, DMAC, and methanol were screened to optimize the CO2 uptake of 20 wt% K2CO3-promoted CC1. K2CO3/CC1(ed) using ethanediol as the impregnation solvent reached a CO2 working capacity of 1.46 mmol/g at 400 °C in the first cycle and 1.23 mmol/g after 10 cycles, twice the capacity of the commercial K2CO3/MG70. Material characterization indicated that the unexpectedly high performance of K2CO3/CC1(ed) could be attributed to the uniform K+ dispersion on the surface of K2CO3/CC1(ed) rather than bulk phase formation and the release of the residual solvent during calcination that could generate more paths for CO2 diffusion.
spellingShingle Zhu, X
Chen, C
Shi, Y
O'Hare, D
Cai, N
Aqueous miscible organic-layered double hydroxides with improved CO2 adsorption capacity
title Aqueous miscible organic-layered double hydroxides with improved CO2 adsorption capacity
title_full Aqueous miscible organic-layered double hydroxides with improved CO2 adsorption capacity
title_fullStr Aqueous miscible organic-layered double hydroxides with improved CO2 adsorption capacity
title_full_unstemmed Aqueous miscible organic-layered double hydroxides with improved CO2 adsorption capacity
title_short Aqueous miscible organic-layered double hydroxides with improved CO2 adsorption capacity
title_sort aqueous miscible organic layered double hydroxides with improved co2 adsorption capacity
work_keys_str_mv AT zhux aqueousmiscibleorganiclayereddoublehydroxideswithimprovedco2adsorptioncapacity
AT chenc aqueousmiscibleorganiclayereddoublehydroxideswithimprovedco2adsorptioncapacity
AT shiy aqueousmiscibleorganiclayereddoublehydroxideswithimprovedco2adsorptioncapacity
AT ohared aqueousmiscibleorganiclayereddoublehydroxideswithimprovedco2adsorptioncapacity
AT cain aqueousmiscibleorganiclayereddoublehydroxideswithimprovedco2adsorptioncapacity