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Postsynthetic Modification of NU-1000 for Designing a Polyoxometalate-Containing Nanocomposite with Enhanced Third-Order Nonlinear Optical Performance

[Image: see text] For the advancement of laser technologies and optical engineering, various types of new inorganic and organic materials are emerging. Metal–organic frameworks (MOFs) reveal a promising use in nonlinear optics, given the presence of organic linkers, metal cluster nodes, and possible...

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Autores principales: Pan, Yangdan, Sanati, Soheila, Nadafan, Marzieh, Abazari, Reza, Gao, Junkuo, Kirillov, Alexander M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9775467/
https://www.ncbi.nlm.nih.gov/pubmed/36375112
http://dx.doi.org/10.1021/acs.inorgchem.2c02709
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author Pan, Yangdan
Sanati, Soheila
Nadafan, Marzieh
Abazari, Reza
Gao, Junkuo
Kirillov, Alexander M.
author_facet Pan, Yangdan
Sanati, Soheila
Nadafan, Marzieh
Abazari, Reza
Gao, Junkuo
Kirillov, Alexander M.
author_sort Pan, Yangdan
collection PubMed
description [Image: see text] For the advancement of laser technologies and optical engineering, various types of new inorganic and organic materials are emerging. Metal–organic frameworks (MOFs) reveal a promising use in nonlinear optics, given the presence of organic linkers, metal cluster nodes, and possible delocalization of π-electron systems. These properties can be further enhanced by the inclusion of solely inorganic materials such as polyoxometalates as prospective low-cost electron-acceptor species. In this study, a novel hybrid nanocomposite, namely, SiW(12)@NU-1000 composed of SiW(12) (H(4)SiW(12)O(40)) and Zr-based MOF (NU-1000), was assembled, completely characterized, and thoroughly investigated in terms of its nonlinear optical (NLO) performance. The third-order NLO behavior of the developed system was assessed by Z-scan measurements using a 532 nm laser. The effect of two-photon absorption and self-focusing was significant in both NU-1000 and SiW(12)@NU-1000. Experimental studies suggested a much superior NLO performance of SiW(12)@NU-1000 if compared to that of NU-1000, which can be assigned to the charge-energy transfer between SiW(12) and NU-1000. Negligible light scattering, good stability, and facile postsynthetic fabrication method can promote the applicability of the SiW(12)@NU-1000 nanocomposite for various optoelectronic purposes. This research may thus open new horizons to improve and enhance the NLO performance of MOF-based materials through π-electron delocalization and compositing metal–organic networks with inorganic molecules as electron acceptors, paving the way for the generation of novel types of hybrid materials for prospective NLO applications.
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spelling pubmed-97754672022-12-23 Postsynthetic Modification of NU-1000 for Designing a Polyoxometalate-Containing Nanocomposite with Enhanced Third-Order Nonlinear Optical Performance Pan, Yangdan Sanati, Soheila Nadafan, Marzieh Abazari, Reza Gao, Junkuo Kirillov, Alexander M. Inorg Chem [Image: see text] For the advancement of laser technologies and optical engineering, various types of new inorganic and organic materials are emerging. Metal–organic frameworks (MOFs) reveal a promising use in nonlinear optics, given the presence of organic linkers, metal cluster nodes, and possible delocalization of π-electron systems. These properties can be further enhanced by the inclusion of solely inorganic materials such as polyoxometalates as prospective low-cost electron-acceptor species. In this study, a novel hybrid nanocomposite, namely, SiW(12)@NU-1000 composed of SiW(12) (H(4)SiW(12)O(40)) and Zr-based MOF (NU-1000), was assembled, completely characterized, and thoroughly investigated in terms of its nonlinear optical (NLO) performance. The third-order NLO behavior of the developed system was assessed by Z-scan measurements using a 532 nm laser. The effect of two-photon absorption and self-focusing was significant in both NU-1000 and SiW(12)@NU-1000. Experimental studies suggested a much superior NLO performance of SiW(12)@NU-1000 if compared to that of NU-1000, which can be assigned to the charge-energy transfer between SiW(12) and NU-1000. Negligible light scattering, good stability, and facile postsynthetic fabrication method can promote the applicability of the SiW(12)@NU-1000 nanocomposite for various optoelectronic purposes. This research may thus open new horizons to improve and enhance the NLO performance of MOF-based materials through π-electron delocalization and compositing metal–organic networks with inorganic molecules as electron acceptors, paving the way for the generation of novel types of hybrid materials for prospective NLO applications. American Chemical Society 2022-11-14 2022-11-28 /pmc/articles/PMC9775467/ /pubmed/36375112 http://dx.doi.org/10.1021/acs.inorgchem.2c02709 Text en © 2022 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 Pan, Yangdan
Sanati, Soheila
Nadafan, Marzieh
Abazari, Reza
Gao, Junkuo
Kirillov, Alexander M.
Postsynthetic Modification of NU-1000 for Designing a Polyoxometalate-Containing Nanocomposite with Enhanced Third-Order Nonlinear Optical Performance
title Postsynthetic Modification of NU-1000 for Designing a Polyoxometalate-Containing Nanocomposite with Enhanced Third-Order Nonlinear Optical Performance
title_full Postsynthetic Modification of NU-1000 for Designing a Polyoxometalate-Containing Nanocomposite with Enhanced Third-Order Nonlinear Optical Performance
title_fullStr Postsynthetic Modification of NU-1000 for Designing a Polyoxometalate-Containing Nanocomposite with Enhanced Third-Order Nonlinear Optical Performance
title_full_unstemmed Postsynthetic Modification of NU-1000 for Designing a Polyoxometalate-Containing Nanocomposite with Enhanced Third-Order Nonlinear Optical Performance
title_short Postsynthetic Modification of NU-1000 for Designing a Polyoxometalate-Containing Nanocomposite with Enhanced Third-Order Nonlinear Optical Performance
title_sort postsynthetic modification of nu-1000 for designing a polyoxometalate-containing nanocomposite with enhanced third-order nonlinear optical performance
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9775467/
https://www.ncbi.nlm.nih.gov/pubmed/36375112
http://dx.doi.org/10.1021/acs.inorgchem.2c02709
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