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The Important Role of N(2) Ion in the Phase-Transition Mechanism of [N(ch3)4]2znbr4

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Date

2020

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Ieee-inst Electrical Electronics Engineers inc

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Green Open Access

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Abstract

The chemical shift of the N(2)(CH3)(4) ion, which has been found to exhibit the similar anomalous behavior of the monoclinic angle $\Delta \beta $ , was related to the order parameter to evaluate the temperature dependence of the linewidth (damping constant) for N-14 nuclear magnetic resonance spectrum of this crystal in terms of the dynamic Ising models, namely the pseudospin-phonon-coupled (PS) and the energy fluctuation (EF) models. The results from both PS and EF models were successful to explain the abnormal behavior of the linewidth in the vicinity of the phase-transition temperature of ${T}_{C}= {287.6}$ K, when compared with the observed linewidth of the transverse acoustic soft mode in this crystal. As an extension of this work, the N-14 relaxation time and the values of the activation free energy were calculated as a function of temperature. The results indicate that the ferroelastic-paraelastic phase transition in this compound is of the order-disorder type.

Description

Kiraci, Ali/0000-0003-4067-1004

Keywords

Damping, Temperature Dependence, Crystals, Ions, Phonons, Resonant Frequency, Acoustics, Activation Energy, Ising Model, Linewidth, N(2)(Ch3)4 Ion, [N(Ch3)(4)](2)Znbr4

Fields of Science

0103 physical sciences, 02 engineering and technology, 0210 nano-technology, 01 natural sciences

Citation

Kiracı, Ali (2020). "The Important Role of N(2)(CH3)(4) Ion in the Phase-Transition Mechanism of [N(CH3)(4)](2)ZnBr4", IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, Vol. 67, No. 5, pp. 1053-1058.

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Q1

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Q1
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OpenCitations Citation Count
3

Source

IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control

Volume

67

Issue

5

Start Page

1053

End Page

1058
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CrossRef : 2

Scopus : 3

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