Data

Data from: CO2 adsorption in azobenzene functionalized stimuli responsive metal-organic frameworks

RMIT University, Australia
Dr Ravichandar Babarao (Associated with, Aggregated by)
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ctx_ver=Z39.88-2004&rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Adc&rfr_id=info%3Asid%2FANDS&rft_id=https://figshare.com/articles/CO_sub_2_sub_Adsorption_in_Azobenzene_Functionalized_Stimuli_Responsive_Metal_Organic_Frameworks/3494171&rft.title=Data from: CO2 adsorption in azobenzene functionalized stimuli responsive metal-organic frameworks&rft.identifier=b7c0fff4afe6dc4f1ee6c25536dae933&rft.publisher=RMIT University, Australia&rft.description=Attached file provides supplementary data for linked article. Recent reports of externally triggered, controlled adsorption of carbon dioxide (CO2) have raised the prospects of using stimuli responsive metal organic frameworks (MOFs) for energy efficient gas storage and release. Motivated by these reports, here we investigate CO2 adsorption mechanisms in photoresponsive PCN-123 and azo-IRMOF-10 frameworks. Using a combination of grand canonical Monte Carlo and first-principles quantum mechanical simulations, we find that the CO2 adsorption in both frameworks is substantially reduced upon light-induced isomerization of azobenzene, which is in agreement with the experimental measurements. We show that the observed behavior originates from inherently weaker interactions of CO2 molecules with the frameworks when azobenzene groups are in cis state rather than due to any steric effects that dramatically alter the adsorption configurations. Our studies suggest that even small changes in local environment triggered by external stimuli can provide a control over the stimuli responsive gas adsorption and release in MOFs.&rft.creator=Dr Ravichandar Babarao&rft.date=2018&rft.relation=http://dx.doi.org/10.1021/acs.jpcc.6b03541&rft_rights=Further information about rights and usage of ACS publications and supplementary data can be found here: http://pubs.acs.org/page/copyright/permissions.html.&rft_rights=CC BY-NC: Attribution-Noncommercial 3.0 AU http://creativecommons.org/licenses/by-nc/3.0/au&rft_subject=Carbon dioxide capture &rft_subject=Photochromic Diarylethene &rft_subject=Molecular molecules &rft_subject=Condensed Matter Modelling and Density Functional Theory&rft_subject=PHYSICAL SCIENCES&rft_subject=CONDENSED MATTER PHYSICS&rft.type=dataset&rft.language=English Access the data

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CC BY-NC: Attribution-Noncommercial 3.0 AU
http://creativecommons.org/licenses/by-nc/3.0/au

Further information about rights and usage of ACS publications and supplementary data can be found here: http://pubs.acs.org/page/copyright/permissions.html.

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Attached file provides supplementary data for linked article. Recent reports of externally triggered, controlled adsorption of carbon dioxide (CO2) have raised the prospects of using stimuli responsive metal organic frameworks (MOFs) for energy efficient gas storage and release. Motivated by these reports, here we investigate CO2 adsorption mechanisms in photoresponsive PCN-123 and azo-IRMOF-10 frameworks. Using a combination of grand canonical Monte Carlo and first-principles quantum mechanical simulations, we find that the CO2 adsorption in both frameworks is substantially reduced upon light-induced isomerization of azobenzene, which is in agreement with the experimental measurements. We show that the observed behavior originates from inherently weaker interactions of CO2 molecules with the frameworks when azobenzene groups are in cis state rather than due to any steric effects that dramatically alter the adsorption configurations. Our studies suggest that even small changes in local environment triggered by external stimuli can provide a control over the stimuli responsive gas adsorption and release in MOFs.

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  • Local : b7c0fff4afe6dc4f1ee6c25536dae933
ACN 633 798 857