Influence of uniaxial and hydrostatic pressures and shear stress σ5 on the phase transition and thermodynamic properties of quasi-one-dimensional ferroelectrics of the CsH2PO4 type

dc.citation.epage78
dc.citation.issue1
dc.citation.spage64
dc.contributor.affiliationIнститут фiзики конденсованих систем НАН України
dc.contributor.affiliationНацiональний унiверситет “Львiвська полiтехнiка”
dc.contributor.affiliationInstitute for Condensed Matter Physics
dc.contributor.affiliationLviv Polytechnic National University
dc.contributor.authorВдович, А. С.
dc.contributor.authorЗачек, І. Р.
dc.contributor.authorЛевицький, Р. Р.
dc.contributor.authorМоїна, А. Р.
dc.contributor.authorVdovych, A. S.
dc.contributor.authorZachek, I. R.
dc.contributor.authorLevitskii, R. R.
dc.contributor.authorMoina, A. P.
dc.date.accessioned2023-03-06T12:28:23Z
dc.date.available2023-03-06T12:28:23Z
dc.date.created2020-01-01
dc.date.issued2020-01-01
dc.description.abstractУ межах модифiкованої моделi протонного впорядкування квазiодновимiрних сегнетоелектрикiв з водневими зв’язками типу CsH2PO4 з врахуванням лiнiйних за деформацiями εi та ε5 внескiв в енергiю протонної системи, але без врахування тунелювання в наближеннi двочастинкового кластера, дослiджено вплив одновiсних pi та гiдростатичного ph тискiв, зсувної напруги σ5 на фазовий перехiд, поляризацiю, поперечну дiелектричну проникнiсть, пружнi сталi та п’єзомодулi сегнетоелектрика CsH2PO4. За належного вибору мiкропараметрiв отримано добрий кiлькiсний опис вiдповiдних експериментальних даних для цих кристалiв.
dc.description.abstractWithin the framework of the modified proton ordering model for the quasi-one-dimensional hydrogen bonded ferroelectrics of the CsH2PO4 type with taking into account the linear in the strains ε1, ε2, ε3, and ε5 contributions into the energy of the proton subsystem, without tunneling, using the two-particle cluster approximation, we study the influence of uniaxial pressures pi, hydrostatic pressure ph, and shear stress σ5 on the phase transition, polarization, transverse dielectric permittivity, elastic constants and piezoelectric coefficients of the quasi-one-dimensional CsH2PO4 ferroelectric crystals.
dc.format.extent64-78
dc.format.pages15
dc.identifier.citationInfluence of uniaxial and hydrostatic pressures and shear stress σ5 on the phase transition and thermodynamic properties of quasi-one-dimensional ferroelectrics of the CsH2PO4 type / Vdovych A. S., Zachek I. R., Levitskii R. R., Moina A. P. // Mathematical Modeling and Computing. — Lviv : Lviv Politechnic Publishing House, 2020. — Vol 7. — No 1. — P. 64–78.
dc.identifier.citationenVdovych A. S., Zachek I. R., Levitskii R. R., Moina A. P. (2020) Influence of uniaxial and hydrostatic pressures and shear stress σ5 on the phase transition and thermodynamic properties of quasi-one-dimensional ferroelectrics of the CsH2PO4 type. Mathematical Modeling and Computing (Lviv), vol. 7, no 1, pp. 64-78.
dc.identifier.doiDOI: 10.23939/mmc2020.01.064
dc.identifier.urihttps://ena.lpnu.ua/handle/ntb/57521
dc.language.isoen
dc.publisherВидавництво Львівської політехніки
dc.publisherLviv Politechnic Publishing House
dc.relation.ispartofMathematical Modeling and Computing, 1 (7), 2020
dc.relation.references[1] Yasuda N., Okamoto M., Shimizu H., Fujimoto S., Yoshino K., Inuishi Y. Pressure-induced antiferroelectricity in ferroelectric CsH2PO4. Phys. Rev. Lett. 1, 1311–1314 (1978).
dc.relation.references[2] Yasuda N., Fujimoto S., Okamoto M., Shimizu H., Yoshino K., Inuishi Y. Pressure and temperature dependence of the dielectric properties of CsH2PO4 and CsH2PO4. Phys. Rev. B. 20, 2755–2764 (1979).
dc.relation.references[3] Schuele P. J., Thomas R. A. A structural study of the high-pressure antiferroelectric phase of CsH2PO4. Japanese Journal of Applied Physics. 24 (S2), 935, (1985).
dc.relation.references[4] Marchon D., Novak A. Antiferroelectric Fluctuations in CsH2PO4 and Raman Spectroscopy. Ferroelectrics.55 (1), 55–58 (1984).
dc.relation.references[5] Brandt N. B., Zhukov S. G., Kulbachinskii V. A., Smirnov P. S., Strukov B. A. Influence of hydrostatic pressure on the dielectric properties of CsH2PO4. Phys. Solid State. 28, 3159 (1986), (in Russian).
dc.relation.references[6] Kobayashi Yu., Deguchi K., Azuma Sh., Suzuki E., Ming Li Ch., Endo Sh., Kikegawad T. Phase Transitions in CsH2PO4 Under High Pressure. Ferroelectrics. 285 (1), 83–89 (2003).
dc.relation.references[7] Magome E., Tomiaka S., Tao Y., Komukae M. Pressure Effect on Phase Transition in Partially Deuterated Cs(H1−xDx)2PO4. J. Phys. Soc. Jpn. 79 (2), 025002 (2010).
dc.relation.references[8] Gesi K., Ozawa K. Effect of hydrostatic pressure on the ferroelectric phase transitions in CsH2PO4 and CsH2PO4. Japanese Journal of Applied Physics. 17 (2), 435–436 (1978).
dc.relation.references[9] Blinc R.,Baretto F. C. Sa. Ferroelectric and antiferroelectric dynamics of pseudo-one-dimensional CsH2PO4.J. Chem. Phys. 72 (11), 6031–6034 (1980).
dc.relation.references[10] Stasyuk I. V., Levitskii R. R., Zachek I. R., Shchur Ya. J., Kutny I. V., Myts Ye. V. Influence of hydrostatic pressure on the phase transition, thermodynamic and dynamic properties of quasi-one-dimensional ferroelecric compounds with hydrogen bonds. Preprint ICMP, Ac. Sci UkrSSR, ICMP-91-4R (1991), (in Russian).
dc.relation.references[11] Stasyuk I. V., Biletskii I. N. On the influence of hydrostatic and uniaxial stress on the ferroelectric phase transition in the KH2PO4 crystals. Bull. Ac. Sci. USSR, Phys. Ser. 4, 705 (1983), (in Russian).
dc.relation.references[12] Braeter H., Plakida N. M., WindsehW. On the pressure dependence of the phase transition temperature in hydrogen-bonded ferroelectrics. Solid State Communications. 69 (3), 289–292 (1989).
dc.relation.references[13] Zachek I. R., Levitsky R. R., Vdovych A. S. Longitudinal static dielectric, piezoelectric, elastic, dynamic and thermal properties of quasi-one-dimensional CsH2PO4 type ferroelectrics with hydrogen bonds. Preprint ICMP-11-17U, Lviv (2011).
dc.relation.references[14] Levitskii R. R., Zachek I. R., Vdovych A. S. Longitudinal Static Dielectric, Piezoelectric Elastic And Thermal Properties of Quasi-One-Dimensional CsH2PO4 Type Ferroelectrics. Phys. Chem. Solid St. 13 (1),40–47 (2012).
dc.relation.references[15] Deguchi K., Okaue E., Ushio S., Nakamura E., Abe K. Dilatometric Study of the Phase Transition of QuasiOne-Dimensional Ferroelectric CsH2PO4. J. Phys. Soc. Jpn. 53, 3074–3080 (1984).
dc.relation.references[16] Van Troeye B., van Setten M. J., Giantomassi M., Torrent M., Rignanese G.-Ma., Gonze X. First-principles study of paraelectric and ferroelectric CsH2PO4 including dispersion forces: Stability and related vibrational, dielectric, and elastic properties. Phys. Rev. B. 95 (2), 024112 (2017).
dc.relation.references[17] Stasyuk I. V., Levitskii R. R., Korinevskii N. A. Collective vibrations of protons in compounds of KH2PO4- type. The cluster approximation. Phys. Stat. Sol. (b). 91 (2), 541–550 (1979).
dc.relation.references[18] Praver S., Smith T. F., Finlaypon T. R. The Room Temperature Plastic Behaviour of CsH2PO4. Aust. J.Phys. 38 (1), 63–84 (1985).
dc.relation.referencesen[1] Yasuda N., Okamoto M., Shimizu H., Fujimoto S., Yoshino K., Inuishi Y. Pressure-induced antiferroelectricity in ferroelectric CsH2PO4. Phys. Rev. Lett. 1, 1311–1314 (1978).
dc.relation.referencesen[2] Yasuda N., Fujimoto S., Okamoto M., Shimizu H., Yoshino K., Inuishi Y. Pressure and temperature dependence of the dielectric properties of CsH2PO4 and CsH2PO4. Phys. Rev. B. 20, 2755–2764 (1979).
dc.relation.referencesen[3] Schuele P. J., Thomas R. A. A structural study of the high-pressure antiferroelectric phase of CsH2PO4. Japanese Journal of Applied Physics. 24 (S2), 935, (1985).
dc.relation.referencesen[4] Marchon D., Novak A. Antiferroelectric Fluctuations in CsH2PO4 and Raman Spectroscopy. Ferroelectrics.55 (1), 55–58 (1984).
dc.relation.referencesen[5] Brandt N. B., Zhukov S. G., Kulbachinskii V. A., Smirnov P. S., Strukov B. A. Influence of hydrostatic pressure on the dielectric properties of CsH2PO4. Phys. Solid State. 28, 3159 (1986), (in Russian).
dc.relation.referencesen[6] Kobayashi Yu., Deguchi K., Azuma Sh., Suzuki E., Ming Li Ch., Endo Sh., Kikegawad T. Phase Transitions in CsH2PO4 Under High Pressure. Ferroelectrics. 285 (1), 83–89 (2003).
dc.relation.referencesen[7] Magome E., Tomiaka S., Tao Y., Komukae M. Pressure Effect on Phase Transition in Partially Deuterated Cs(H1−xDx)2PO4. J. Phys. Soc. Jpn. 79 (2), 025002 (2010).
dc.relation.referencesen[8] Gesi K., Ozawa K. Effect of hydrostatic pressure on the ferroelectric phase transitions in CsH2PO4 and CsH2PO4. Japanese Journal of Applied Physics. 17 (2), 435–436 (1978).
dc.relation.referencesen[9] Blinc R.,Baretto F. C. Sa. Ferroelectric and antiferroelectric dynamics of pseudo-one-dimensional CsH2PO4.J. Chem. Phys. 72 (11), 6031–6034 (1980).
dc.relation.referencesen[10] Stasyuk I. V., Levitskii R. R., Zachek I. R., Shchur Ya. J., Kutny I. V., Myts Ye. V. Influence of hydrostatic pressure on the phase transition, thermodynamic and dynamic properties of quasi-one-dimensional ferroelecric compounds with hydrogen bonds. Preprint ICMP, Ac. Sci UkrSSR, ICMP-91-4R (1991), (in Russian).
dc.relation.referencesen[11] Stasyuk I. V., Biletskii I. N. On the influence of hydrostatic and uniaxial stress on the ferroelectric phase transition in the KH2PO4 crystals. Bull. Ac. Sci. USSR, Phys. Ser. 4, 705 (1983), (in Russian).
dc.relation.referencesen[12] Braeter H., Plakida N. M., WindsehW. On the pressure dependence of the phase transition temperature in hydrogen-bonded ferroelectrics. Solid State Communications. 69 (3), 289–292 (1989).
dc.relation.referencesen[13] Zachek I. R., Levitsky R. R., Vdovych A. S. Longitudinal static dielectric, piezoelectric, elastic, dynamic and thermal properties of quasi-one-dimensional CsH2PO4 type ferroelectrics with hydrogen bonds. Preprint ICMP-11-17U, Lviv (2011).
dc.relation.referencesen[14] Levitskii R. R., Zachek I. R., Vdovych A. S. Longitudinal Static Dielectric, Piezoelectric Elastic And Thermal Properties of Quasi-One-Dimensional CsH2PO4 Type Ferroelectrics. Phys. Chem. Solid St. 13 (1),40–47 (2012).
dc.relation.referencesen[15] Deguchi K., Okaue E., Ushio S., Nakamura E., Abe K. Dilatometric Study of the Phase Transition of QuasiOne-Dimensional Ferroelectric CsH2PO4. J. Phys. Soc. Jpn. 53, 3074–3080 (1984).
dc.relation.referencesen[16] Van Troeye B., van Setten M. J., Giantomassi M., Torrent M., Rignanese G.-Ma., Gonze X. First-principles study of paraelectric and ferroelectric CsH2PO4 including dispersion forces: Stability and related vibrational, dielectric, and elastic properties. Phys. Rev. B. 95 (2), 024112 (2017).
dc.relation.referencesen[17] Stasyuk I. V., Levitskii R. R., Korinevskii N. A. Collective vibrations of protons in compounds of KH2PO4- type. The cluster approximation. Phys. Stat. Sol. (b). 91 (2), 541–550 (1979).
dc.relation.referencesen[18] Praver S., Smith T. F., Finlaypon T. R. The Room Temperature Plastic Behaviour of CsH2PO4. Aust. J.Phys. 38 (1), 63–84 (1985).
dc.rights.holder©2020 Lviv Polytechnic National University CMM IAPMM NASU
dc.subjectсегнетоелектрики
dc.subjectдiелектрична проникнiсть
dc.subjectп’єзомодулi
dc.subjectзсувна напруга
dc.subjectferroelectrics
dc.subjectdielectric permittivity
dc.subjectpiezoelectric moduli
dc.subjectshear stress
dc.subject.udc82D45
dc.subject.udc82B20
dc.titleInfluence of uniaxial and hydrostatic pressures and shear stress σ5 on the phase transition and thermodynamic properties of quasi-one-dimensional ferroelectrics of the CsH2PO4 type
dc.title.alternativeВплив одновісних та гідростатичного тисків, зсувної напруги σ5 на фазові переходи та термодинамічні характеристики квазіодновимірних сегнетоелектриків типу CsH2PO4
dc.typeArticle

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