Nanodomain structures formation during polarization reversal in uniform electric field in strontium barium niobate single crystals / Shur V.Ya., Shikhova V.A., Ievlev A.V., Zelenovskiy P.S., Neradovskiy M.M., Pelegov D.V., Ivleva L.I. // Journal of Applied Physics. - 2012. - V. 112, l. 6.

ISSN:
00218979
Type:
Article
Abstract:
We have studied the ferroelectric nanodomain formation in single crystals of strontium barium niobate Sr 0.61Ba 0.39Nb 2O 6 using piezoelectric force microscopy and Raman confocal microscopy. The nanodomain structures have been created by application of the uniform electric field at room temperature. Four variants of nanodomain structure formation have been revealed: (1) discrete switching, (2) incomplete domain merging, (3) spontaneous backswitching, and (4) enlarging of nanodomain ensembles. Kinetics of the observed micro- and nanodomain structures has been explained on the basis of approach developed for lithium niobate and lithium tantalate crystals. © 2012 American Institute of Physics.
Author keywords:
Index keywords:
Backswitching; Lithium niobate; Lithium tantalate; Nanodomain structures; Piezoelectric force microscopy; Polarization reversals; Room temperature; Strontium barium niobate; Uniform electric fields; C
DOI:
10.1063/1.4754511
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https://www.scopus.com/inward/record.uri?eid=2-s2.0-84867064860&doi=10.1063%2f1.4754511&partnerID=40&md5=c877317dcaf67bf6111715723a4f2f78
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Art. No. 064117
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Affiliations Ferroelectric Laboratory, Institute of Natural Sciences, Ural Federal University, 620000 Ekaterinburg, Russian Federation; Prokhorov General Physics Institute, Russian Academy of Sciences, 119991 Moscow, Russian Federation
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Correspondence Address Shur, V.Ya.; Ferroelectric Laboratory, Institute of Natural Sciences, Ural Federal University, 620000 Ekaterinburg, Russian Federation; email: vladimir.shur@usu.ru
CODEN JAPIA
Language of Original Document English
Abbreviated Source Title J Appl Phys
Source Scopus