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Welding partially reduced graphene oxides by MOFs into micro–mesoporous hybrids for high-performance oil absorption

Partially reduced graphene oxides (PRGOs) with a small number of COOH groups remaining at the edges were interlocked by UiO-66-NH(2) nanoparticles into hierarchical porous hybrids (PRGO@UiO-66-NH(2)) during the synthesis of UiO-66-NH(2) in the presence of PRGOs, in which the UiO-66-NH(2) nanoparticl...

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Autores principales: Sun, Lu, Tang, Jun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9041363/
https://www.ncbi.nlm.nih.gov/pubmed/35498948
http://dx.doi.org/10.1039/d1ra05644a
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author Sun, Lu
Tang, Jun
author_facet Sun, Lu
Tang, Jun
author_sort Sun, Lu
collection PubMed
description Partially reduced graphene oxides (PRGOs) with a small number of COOH groups remaining at the edges were interlocked by UiO-66-NH(2) nanoparticles into hierarchical porous hybrids (PRGO@UiO-66-NH(2)) during the synthesis of UiO-66-NH(2) in the presence of PRGOs, in which the UiO-66-NH(2) nanoparticles provide micropores and the interlocked PRGO skeletons provide mesopores. The peak intensity of the functional groups on the PRGO@UiO-66-NH(2) hybrids decrease greatly when compared with the GO@UiO-66-NH(2) hybrids and the UiO-66-NH(2) nanoparticles, and the number of –COOH at the edge of the PRGOs are approximately 6.3% after reduction, which is confirmed by the FT-IR and XPS results. When the PRGO@UiO-66-NH(2) hybrids were embedded in their macropores via hydrogen bonding, melamine foams (MFs) were able to effectively absorb a variety of water-immiscible organic solvents from oil/water biphasic mixtures and, at the same time, suppress water infusion due to Cassie-state surface superhydrophobicity with a water contact angle of 154.2° in air. After 10 cycles, the PRGO@UiO-66-NH(2)-laden MFs exhibited water contact angles of 148.3°, which indicated that the composite MFs had excellent stability and recycling ability after 10 cycles. The PRGO@UiO-66-NH(2)-laden MFs had an oil absorption capacity of >10 000 wt% of the dry mass of absorbents and water absorption capacity of ≈1.76 wt% of the adsorbate, thus highlighting the high absorption selectivity of oil over water.
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spelling pubmed-90413632022-04-28 Welding partially reduced graphene oxides by MOFs into micro–mesoporous hybrids for high-performance oil absorption Sun, Lu Tang, Jun RSC Adv Chemistry Partially reduced graphene oxides (PRGOs) with a small number of COOH groups remaining at the edges were interlocked by UiO-66-NH(2) nanoparticles into hierarchical porous hybrids (PRGO@UiO-66-NH(2)) during the synthesis of UiO-66-NH(2) in the presence of PRGOs, in which the UiO-66-NH(2) nanoparticles provide micropores and the interlocked PRGO skeletons provide mesopores. The peak intensity of the functional groups on the PRGO@UiO-66-NH(2) hybrids decrease greatly when compared with the GO@UiO-66-NH(2) hybrids and the UiO-66-NH(2) nanoparticles, and the number of –COOH at the edge of the PRGOs are approximately 6.3% after reduction, which is confirmed by the FT-IR and XPS results. When the PRGO@UiO-66-NH(2) hybrids were embedded in their macropores via hydrogen bonding, melamine foams (MFs) were able to effectively absorb a variety of water-immiscible organic solvents from oil/water biphasic mixtures and, at the same time, suppress water infusion due to Cassie-state surface superhydrophobicity with a water contact angle of 154.2° in air. After 10 cycles, the PRGO@UiO-66-NH(2)-laden MFs exhibited water contact angles of 148.3°, which indicated that the composite MFs had excellent stability and recycling ability after 10 cycles. The PRGO@UiO-66-NH(2)-laden MFs had an oil absorption capacity of >10 000 wt% of the dry mass of absorbents and water absorption capacity of ≈1.76 wt% of the adsorbate, thus highlighting the high absorption selectivity of oil over water. The Royal Society of Chemistry 2021-09-20 /pmc/articles/PMC9041363/ /pubmed/35498948 http://dx.doi.org/10.1039/d1ra05644a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Sun, Lu
Tang, Jun
Welding partially reduced graphene oxides by MOFs into micro–mesoporous hybrids for high-performance oil absorption
title Welding partially reduced graphene oxides by MOFs into micro–mesoporous hybrids for high-performance oil absorption
title_full Welding partially reduced graphene oxides by MOFs into micro–mesoporous hybrids for high-performance oil absorption
title_fullStr Welding partially reduced graphene oxides by MOFs into micro–mesoporous hybrids for high-performance oil absorption
title_full_unstemmed Welding partially reduced graphene oxides by MOFs into micro–mesoporous hybrids for high-performance oil absorption
title_short Welding partially reduced graphene oxides by MOFs into micro–mesoporous hybrids for high-performance oil absorption
title_sort welding partially reduced graphene oxides by mofs into micro–mesoporous hybrids for high-performance oil absorption
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9041363/
https://www.ncbi.nlm.nih.gov/pubmed/35498948
http://dx.doi.org/10.1039/d1ra05644a
work_keys_str_mv AT sunlu weldingpartiallyreducedgrapheneoxidesbymofsintomicromesoporoushybridsforhighperformanceoilabsorption
AT tangjun weldingpartiallyreducedgrapheneoxidesbymofsintomicromesoporoushybridsforhighperformanceoilabsorption