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Ammonia Capture in Rhodium(II)-Based Metal–Organic Polyhedra via Synergistic Coordinative and H-Bonding Interactions

[Image: see text] Ammonia (NH(3)) is among the world’s most widely produced bulk chemicals, given its extensive use in diverse sectors such as agriculture; however, it poses environmental and health risks at low concentrations. Therefore, there is a need for developing new technologies and materials...

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Autores principales: Carné-Sánchez, Arnau, Martínez-Esaín, Jordi, Rookard, Tanner, Flood, Christopher J., Faraudo, Jordi, Stylianou, Kyriakos C., Maspoch, Daniel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9923682/
https://www.ncbi.nlm.nih.gov/pubmed/36695491
http://dx.doi.org/10.1021/acsami.2c19206
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author Carné-Sánchez, Arnau
Martínez-Esaín, Jordi
Rookard, Tanner
Flood, Christopher J.
Faraudo, Jordi
Stylianou, Kyriakos C.
Maspoch, Daniel
author_facet Carné-Sánchez, Arnau
Martínez-Esaín, Jordi
Rookard, Tanner
Flood, Christopher J.
Faraudo, Jordi
Stylianou, Kyriakos C.
Maspoch, Daniel
author_sort Carné-Sánchez, Arnau
collection PubMed
description [Image: see text] Ammonia (NH(3)) is among the world’s most widely produced bulk chemicals, given its extensive use in diverse sectors such as agriculture; however, it poses environmental and health risks at low concentrations. Therefore, there is a need for developing new technologies and materials to capture and store ammonia safely. Herein, we report for the first time the use of metal–organic polyhedra (MOPs) as ammonia adsorbents. We evaluated three different rhodium-based MOPs: [Rh(2)(bdc)(2)](12) (where bdc is 1,3-benzene dicarboxylate); one functionalized with hydroxyl groups at its outer surface [Rh(2)(OH-bdc)(2)](12) (where OH-bdc is 5-hydroxy-1,3-benzene dicarboxylate); and one decorated with aliphatic alkoxide chains at its outer surface [Rh(2)(C(12)O-bdc)(2)](12) (where C(12)O-bdc is 5-dodecoxybenzene-1,3-benzene dicarboxylate). Ammonia-adsorption experiments revealed that all three Rh-MOPs strongly interact with ammonia, with uptake capacities exceeding 10 mmol/g(MOP). Furthermore, computational and experimental data showed that the mechanism of the interaction between Rh-MOPs and ammonia proceeds through a first step of coordination of NH(3) to the axial site of the Rh(II) paddlewheel cluster, which triggers the adsorption of additional NH(3) molecules through H-bonding interaction. This unique mechanism creates H-bonded clusters of NH(3) on each Rh(II) axial site, which accounts for the high NH(3) uptake capacity of Rh-MOPs. Rh-MOPs can be regenerated through their immersion in acidic water, and upon activation, their ammonia uptake can be recovered for at least three cycles. Our findings demonstrate that MOPs can be used as porous hosts to capture corrosive molecules like ammonia, and that their surface functionalization can enhance the ammonia uptake performance.
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spelling pubmed-99236822023-02-14 Ammonia Capture in Rhodium(II)-Based Metal–Organic Polyhedra via Synergistic Coordinative and H-Bonding Interactions Carné-Sánchez, Arnau Martínez-Esaín, Jordi Rookard, Tanner Flood, Christopher J. Faraudo, Jordi Stylianou, Kyriakos C. Maspoch, Daniel ACS Appl Mater Interfaces [Image: see text] Ammonia (NH(3)) is among the world’s most widely produced bulk chemicals, given its extensive use in diverse sectors such as agriculture; however, it poses environmental and health risks at low concentrations. Therefore, there is a need for developing new technologies and materials to capture and store ammonia safely. Herein, we report for the first time the use of metal–organic polyhedra (MOPs) as ammonia adsorbents. We evaluated three different rhodium-based MOPs: [Rh(2)(bdc)(2)](12) (where bdc is 1,3-benzene dicarboxylate); one functionalized with hydroxyl groups at its outer surface [Rh(2)(OH-bdc)(2)](12) (where OH-bdc is 5-hydroxy-1,3-benzene dicarboxylate); and one decorated with aliphatic alkoxide chains at its outer surface [Rh(2)(C(12)O-bdc)(2)](12) (where C(12)O-bdc is 5-dodecoxybenzene-1,3-benzene dicarboxylate). Ammonia-adsorption experiments revealed that all three Rh-MOPs strongly interact with ammonia, with uptake capacities exceeding 10 mmol/g(MOP). Furthermore, computational and experimental data showed that the mechanism of the interaction between Rh-MOPs and ammonia proceeds through a first step of coordination of NH(3) to the axial site of the Rh(II) paddlewheel cluster, which triggers the adsorption of additional NH(3) molecules through H-bonding interaction. This unique mechanism creates H-bonded clusters of NH(3) on each Rh(II) axial site, which accounts for the high NH(3) uptake capacity of Rh-MOPs. Rh-MOPs can be regenerated through their immersion in acidic water, and upon activation, their ammonia uptake can be recovered for at least three cycles. Our findings demonstrate that MOPs can be used as porous hosts to capture corrosive molecules like ammonia, and that their surface functionalization can enhance the ammonia uptake performance. American Chemical Society 2023-01-25 /pmc/articles/PMC9923682/ /pubmed/36695491 http://dx.doi.org/10.1021/acsami.2c19206 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Carné-Sánchez, Arnau
Martínez-Esaín, Jordi
Rookard, Tanner
Flood, Christopher J.
Faraudo, Jordi
Stylianou, Kyriakos C.
Maspoch, Daniel
Ammonia Capture in Rhodium(II)-Based Metal–Organic Polyhedra via Synergistic Coordinative and H-Bonding Interactions
title Ammonia Capture in Rhodium(II)-Based Metal–Organic Polyhedra via Synergistic Coordinative and H-Bonding Interactions
title_full Ammonia Capture in Rhodium(II)-Based Metal–Organic Polyhedra via Synergistic Coordinative and H-Bonding Interactions
title_fullStr Ammonia Capture in Rhodium(II)-Based Metal–Organic Polyhedra via Synergistic Coordinative and H-Bonding Interactions
title_full_unstemmed Ammonia Capture in Rhodium(II)-Based Metal–Organic Polyhedra via Synergistic Coordinative and H-Bonding Interactions
title_short Ammonia Capture in Rhodium(II)-Based Metal–Organic Polyhedra via Synergistic Coordinative and H-Bonding Interactions
title_sort ammonia capture in rhodium(ii)-based metal–organic polyhedra via synergistic coordinative and h-bonding interactions
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9923682/
https://www.ncbi.nlm.nih.gov/pubmed/36695491
http://dx.doi.org/10.1021/acsami.2c19206
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