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Breathing Europium–Terbium Co-doped Luminescent MOF as a Broad-Range Ratiometric Thermometer with a Contrasting Temperature–Intensity Relationship

[Image: see text] Solvothermal reactions of lanthanide salts and a semirigid tripodal H(3)tatab (4,4′,4″-s-triazine-1,3,5-triyltri-p-aminobenzoic acid) ligand in mixed water and N-methyl pyrrolidone (NMP) generated novel breathing MOFs [Ln(tatab)]·solvent (Ln = Eu in 1-Eu, Tb in 1-Tb, Eu(0.015)Tb(0....

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Autores principales: Yao, Jin, Zhao, Yan-Wu, Zhang, Xian-Ming
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2018
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6641742/
https://www.ncbi.nlm.nih.gov/pubmed/31458775
http://dx.doi.org/10.1021/acsomega.8b00199
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author Yao, Jin
Zhao, Yan-Wu
Zhang, Xian-Ming
author_facet Yao, Jin
Zhao, Yan-Wu
Zhang, Xian-Ming
author_sort Yao, Jin
collection PubMed
description [Image: see text] Solvothermal reactions of lanthanide salts and a semirigid tripodal H(3)tatab (4,4′,4″-s-triazine-1,3,5-triyltri-p-aminobenzoic acid) ligand in mixed water and N-methyl pyrrolidone (NMP) generated novel breathing MOFs [Ln(tatab)]·solvent (Ln = Eu in 1-Eu, Tb in 1-Tb, Eu(0.015)Tb(0.985) in 1-Eu(0.015)Tb(0.985)). The framework of 1 was contracted upon removal of guests to form partly desolvated [Ln (tatab)]·3.7H(2)O·2.5NMP (1′). Single-crystal X-ray analyses demonstrated that 1 has the breathing ability to spontaneously release guests and maintain the same topology. In contrast to as-synthesized 1, the cell volume of 1′ decreased markedly upon removal of the guests. Different from linear dicarboxylates, the semirigid tripodal tatab ligand is bridged to an inorganic Ln–O chain, limiting the rotation around the O–O-axis of carboxylate. The breathing mechanism is based on the flexible C–N–C angles of amide bonds in the tatab ligand, causing a change in the solvent-accessible volume in the framework. Interestingly, the luminescence color of breathing co-doped lanthanide MOF 1′-Eu(0.015)Tb(0.985) is blue-shifted and turned from orange to green with an increase in temperature, which can be attributed to a change in the relative intensity of Tb and Eu emissions, and is quite different from that observed for the reported related compounds. The breathing co-doped lanthanide MOF 1′-Eu(0.015)Tb(0.985) can be applied as a high-sensitivity ratiometric thermometer in a broad temperature from 90 to 300 K.
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spelling pubmed-66417422019-08-27 Breathing Europium–Terbium Co-doped Luminescent MOF as a Broad-Range Ratiometric Thermometer with a Contrasting Temperature–Intensity Relationship Yao, Jin Zhao, Yan-Wu Zhang, Xian-Ming ACS Omega [Image: see text] Solvothermal reactions of lanthanide salts and a semirigid tripodal H(3)tatab (4,4′,4″-s-triazine-1,3,5-triyltri-p-aminobenzoic acid) ligand in mixed water and N-methyl pyrrolidone (NMP) generated novel breathing MOFs [Ln(tatab)]·solvent (Ln = Eu in 1-Eu, Tb in 1-Tb, Eu(0.015)Tb(0.985) in 1-Eu(0.015)Tb(0.985)). The framework of 1 was contracted upon removal of guests to form partly desolvated [Ln (tatab)]·3.7H(2)O·2.5NMP (1′). Single-crystal X-ray analyses demonstrated that 1 has the breathing ability to spontaneously release guests and maintain the same topology. In contrast to as-synthesized 1, the cell volume of 1′ decreased markedly upon removal of the guests. Different from linear dicarboxylates, the semirigid tripodal tatab ligand is bridged to an inorganic Ln–O chain, limiting the rotation around the O–O-axis of carboxylate. The breathing mechanism is based on the flexible C–N–C angles of amide bonds in the tatab ligand, causing a change in the solvent-accessible volume in the framework. Interestingly, the luminescence color of breathing co-doped lanthanide MOF 1′-Eu(0.015)Tb(0.985) is blue-shifted and turned from orange to green with an increase in temperature, which can be attributed to a change in the relative intensity of Tb and Eu emissions, and is quite different from that observed for the reported related compounds. The breathing co-doped lanthanide MOF 1′-Eu(0.015)Tb(0.985) can be applied as a high-sensitivity ratiometric thermometer in a broad temperature from 90 to 300 K. American Chemical Society 2018-05-29 /pmc/articles/PMC6641742/ /pubmed/31458775 http://dx.doi.org/10.1021/acsomega.8b00199 Text en Copyright © 2018 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Yao, Jin
Zhao, Yan-Wu
Zhang, Xian-Ming
Breathing Europium–Terbium Co-doped Luminescent MOF as a Broad-Range Ratiometric Thermometer with a Contrasting Temperature–Intensity Relationship
title Breathing Europium–Terbium Co-doped Luminescent MOF as a Broad-Range Ratiometric Thermometer with a Contrasting Temperature–Intensity Relationship
title_full Breathing Europium–Terbium Co-doped Luminescent MOF as a Broad-Range Ratiometric Thermometer with a Contrasting Temperature–Intensity Relationship
title_fullStr Breathing Europium–Terbium Co-doped Luminescent MOF as a Broad-Range Ratiometric Thermometer with a Contrasting Temperature–Intensity Relationship
title_full_unstemmed Breathing Europium–Terbium Co-doped Luminescent MOF as a Broad-Range Ratiometric Thermometer with a Contrasting Temperature–Intensity Relationship
title_short Breathing Europium–Terbium Co-doped Luminescent MOF as a Broad-Range Ratiometric Thermometer with a Contrasting Temperature–Intensity Relationship
title_sort breathing europium–terbium co-doped luminescent mof as a broad-range ratiometric thermometer with a contrasting temperature–intensity relationship
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6641742/
https://www.ncbi.nlm.nih.gov/pubmed/31458775
http://dx.doi.org/10.1021/acsomega.8b00199
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