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A New Avenue to Relaxor-like Ferroelectric Behaviour Found by Probing the Structure and Dynamics of [NH3NH2]Mg(HCO2)3

Hitchings, Thomas J., Wickens, Helen M., Peat, George, Hodgkinson, Paul, Srivastava, Anant Kumar, Lu, Teng, Liu, Yun, Piltz, Ross O., Demmel, Franz, Phillips, Anthony Edward, and others. (2023) A New Avenue to Relaxor-like Ferroelectric Behaviour Found by Probing the Structure and Dynamics of [NH3NH2]Mg(HCO2)3. Journal of Materials Chemistry C, 11 (28). pp. 9695-9706. ISSN 2050-7526. E-ISSN 2050-7534. (doi:10.1039/d3tc00480e) (KAR id:101757)

Abstract

The field of relaxor ferroelectrics has long been dominated by ceramic oxide materials exhibiting large polarisations with temperature and frequency dependence. Intriguingly, the dense metal-organic framework (MOF) [NH3NH2]Mg(HCO2)3 was reported as one of the first coordination frameworks to exhibit relaxor-like properties. This work clarifies the origin of these relaxor-like properties through re-examining its unusual phase transition using neutron single crystal diffraction, along with solid-state NMR and quasielastic neutron scattering studies. This reveals that the phase transition is caused by the partial re-orientation of NH3NH2 within the pores of the framework, from lying in the planes of the channel at lower temperatures to along the channel direction above the transition temperature. The transition occurs via a dynamic process such that the NH3NH2 cations can slowly interconvert between parallel and perpendicular orientations, with an estimated activation energy of 60 kJ mol-1. Furthermore these studies are consistent with proton hopping between the hydrazinium cations oriented along the channel direction via a proton site intermediate. This suggests the ferroelectric properties of [NH3NH2]Mg(HCO2)3 likely driven by a hydrogen bonding mechanism. The relaxor behaviour is proposed to be the result of polar regions, which likely fluctuate due to increased cation dynamics at high temperature. The combination of cation reorientation and proton hopping fully describes this material’s relaxor-like behaviour, suggesting a route to future design of non-oxide-based relaxor ferroelectrics.

Item Type: Article
DOI/Identification number: 10.1039/d3tc00480e
Additional information: For the purpose of open access, the author(s) has applied a Creative Commons Attribution (CC BY) licence to any Author Accepted Manuscript version arising.
Subjects: Q Science > QD Chemistry
Divisions: Divisions > Division of Natural Sciences > Chemistry and Forensics
Funders: Engineering and Physical Sciences Research Council (https://ror.org/0439y7842)
Leverhulme Trust (https://ror.org/012mzw131)
Science and Technology Facilities Council (https://ror.org/057g20z61)
Depositing User: Paul Saines
Date Deposited: 20 Jun 2023 11:01 UTC
Last Modified: 05 Nov 2024 13:07 UTC
Resource URI: https://kar.kent.ac.uk/id/eprint/101757 (The current URI for this page, for reference purposes)

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