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Elastic Properties and Energy Dissipation Related to the Disorder-Order Ferroelectric Transition in a Multiferroic Metal-Organic Framework [(CH(3))(2)NH(2)][Fe(HCOO)(3)] with a Perovskite-Like Structure

The elastic properties and the coupling of ferroelasticity with ferromagnetism and ferroelectricy are crucial for the development of multiferroic metal-organic frameworks (MOFs) with strong magnetoelectric coupling. Elastic properties and energy dissipation related to the disorder-order ferroelectri...

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Autores principales: Zhang, Zhiying, Shen, Xin, Yu, Hongliang, Wang, Xiaoming, Sun, Lei, Yue, Shumin, Cheng, Dongpeng, Tang, Hao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8125427/
https://www.ncbi.nlm.nih.gov/pubmed/34063049
http://dx.doi.org/10.3390/ma14092403
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author Zhang, Zhiying
Shen, Xin
Yu, Hongliang
Wang, Xiaoming
Sun, Lei
Yue, Shumin
Cheng, Dongpeng
Tang, Hao
author_facet Zhang, Zhiying
Shen, Xin
Yu, Hongliang
Wang, Xiaoming
Sun, Lei
Yue, Shumin
Cheng, Dongpeng
Tang, Hao
author_sort Zhang, Zhiying
collection PubMed
description The elastic properties and the coupling of ferroelasticity with ferromagnetism and ferroelectricy are crucial for the development of multiferroic metal-organic frameworks (MOFs) with strong magnetoelectric coupling. Elastic properties and energy dissipation related to the disorder-order ferroelectric transition in [(CH(3))(2)NH(2)][Fe(HCOO)(3)] were studied by differential scanning calorimetry (DSC), low temperature X-ray diffraction (XRD) and dynamic mechanical analysis (DMA). DSC result indicated the transition near 164 K. XRD showed the first-order structural transition from rhombohedral R [Formula: see text] c to monoclinic Cc at ~145 K, accompanied by the disorder-order transition of proton ordering in the N–H…O hydrogen bonds in [(CH(3))(2)NH(2)](+) as well as the distortion of the framework. For single crystals, the storage modulus was ~1.1 GPa and the loss modulus was ~0.02 GPa at 298 K. DMA of single crystals showed quick drop of storage modulus and peaks of loss modulus and loss factor near the ferroelectric transition temperature ~164 K. DMA of pellets showed the minimum of the normalized storage modulus and the peaks of loss factor at ~164 K with weak frequency dependences. The normalized loss modulus reached the maximum near 145 K, with higher peak temperature at higher frequency. The elastic anomalies and energy dissipation near the ferroelectric transition temperature are caused by the coupling of the movements of dimethylammonium cations and twin walls.
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spelling pubmed-81254272021-05-17 Elastic Properties and Energy Dissipation Related to the Disorder-Order Ferroelectric Transition in a Multiferroic Metal-Organic Framework [(CH(3))(2)NH(2)][Fe(HCOO)(3)] with a Perovskite-Like Structure Zhang, Zhiying Shen, Xin Yu, Hongliang Wang, Xiaoming Sun, Lei Yue, Shumin Cheng, Dongpeng Tang, Hao Materials (Basel) Article The elastic properties and the coupling of ferroelasticity with ferromagnetism and ferroelectricy are crucial for the development of multiferroic metal-organic frameworks (MOFs) with strong magnetoelectric coupling. Elastic properties and energy dissipation related to the disorder-order ferroelectric transition in [(CH(3))(2)NH(2)][Fe(HCOO)(3)] were studied by differential scanning calorimetry (DSC), low temperature X-ray diffraction (XRD) and dynamic mechanical analysis (DMA). DSC result indicated the transition near 164 K. XRD showed the first-order structural transition from rhombohedral R [Formula: see text] c to monoclinic Cc at ~145 K, accompanied by the disorder-order transition of proton ordering in the N–H…O hydrogen bonds in [(CH(3))(2)NH(2)](+) as well as the distortion of the framework. For single crystals, the storage modulus was ~1.1 GPa and the loss modulus was ~0.02 GPa at 298 K. DMA of single crystals showed quick drop of storage modulus and peaks of loss modulus and loss factor near the ferroelectric transition temperature ~164 K. DMA of pellets showed the minimum of the normalized storage modulus and the peaks of loss factor at ~164 K with weak frequency dependences. The normalized loss modulus reached the maximum near 145 K, with higher peak temperature at higher frequency. The elastic anomalies and energy dissipation near the ferroelectric transition temperature are caused by the coupling of the movements of dimethylammonium cations and twin walls. MDPI 2021-05-05 /pmc/articles/PMC8125427/ /pubmed/34063049 http://dx.doi.org/10.3390/ma14092403 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zhang, Zhiying
Shen, Xin
Yu, Hongliang
Wang, Xiaoming
Sun, Lei
Yue, Shumin
Cheng, Dongpeng
Tang, Hao
Elastic Properties and Energy Dissipation Related to the Disorder-Order Ferroelectric Transition in a Multiferroic Metal-Organic Framework [(CH(3))(2)NH(2)][Fe(HCOO)(3)] with a Perovskite-Like Structure
title Elastic Properties and Energy Dissipation Related to the Disorder-Order Ferroelectric Transition in a Multiferroic Metal-Organic Framework [(CH(3))(2)NH(2)][Fe(HCOO)(3)] with a Perovskite-Like Structure
title_full Elastic Properties and Energy Dissipation Related to the Disorder-Order Ferroelectric Transition in a Multiferroic Metal-Organic Framework [(CH(3))(2)NH(2)][Fe(HCOO)(3)] with a Perovskite-Like Structure
title_fullStr Elastic Properties and Energy Dissipation Related to the Disorder-Order Ferroelectric Transition in a Multiferroic Metal-Organic Framework [(CH(3))(2)NH(2)][Fe(HCOO)(3)] with a Perovskite-Like Structure
title_full_unstemmed Elastic Properties and Energy Dissipation Related to the Disorder-Order Ferroelectric Transition in a Multiferroic Metal-Organic Framework [(CH(3))(2)NH(2)][Fe(HCOO)(3)] with a Perovskite-Like Structure
title_short Elastic Properties and Energy Dissipation Related to the Disorder-Order Ferroelectric Transition in a Multiferroic Metal-Organic Framework [(CH(3))(2)NH(2)][Fe(HCOO)(3)] with a Perovskite-Like Structure
title_sort elastic properties and energy dissipation related to the disorder-order ferroelectric transition in a multiferroic metal-organic framework [(ch(3))(2)nh(2)][fe(hcoo)(3)] with a perovskite-like structure
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8125427/
https://www.ncbi.nlm.nih.gov/pubmed/34063049
http://dx.doi.org/10.3390/ma14092403
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