Micro- and nanodomain structures produced by pulse laser heating in congruent lithium tantalate / Shur V.Ya., Mingaliev E.A., Kuznetsov D.K., Kosobokov M.S. // Ferroelectrics. - 2013. - V. 443, l. 1. - P. 95-102.

ISSN:
00150193
Type:
Conference Paper
Abstract:
Formation of the micro- and nanodomain structures under the action of pyroelectric field induced by pulse IR laser heating was studied in congruent lithium tantalate. Two types of the self-organized domain structures were found. The three-dimensional maze-type structure with average period about 100 nm appeared in the central part of the irradiated zone heated above Tc. The self-similar structure of oriented domain rays with nanoscale width formed at the edge of the irradiated zone. The obtained increase of the average distance between the nanodomain rays for irradiation at the elevated temperatures was attributed to the decrease of the pyroelectric field. Copyright © Taylor & Francis Group, LLC.
Author keywords:
Bulk conductivity; Domain engineering; Lithium tantalate; Nanodomains; Pyroelectric effect
Index keywords:
Bulk conductivities; Domain engineering; Lithium tantalate; Nano domain; Pyroelectric effect; Ferroelectricity; Lithium
DOI:
10.1080/00150193.2013.784180
Смотреть в Scopus:
https://www.scopus.com/inward/record.uri?eid=2-s2.0-84883237511&doi=10.1080%2f00150193.2013.784180&partnerID=40&md5=2b0585086ee8f4c687059e9c2f2993a8
Соавторы в МНС:
Другие поля
Поле Значение
Link https://www.scopus.com/inward/record.uri?eid=2-s2.0-84883237511&doi=10.1080%2f00150193.2013.784180&partnerID=40&md5=2b0585086ee8f4c687059e9c2f2993a8
Affiliations Ferroelectric Laboratory, Institute of Natural Science, Ural Federal University, 620000, Ekaterinburg, Russian Federation
Author Keywords Bulk conductivity; Domain engineering; Lithium tantalate; Nanodomains; Pyroelectric effect
References Denton, R., Chen, F., Ballman, A., Lithium tantalate light modulators (1967) J. Appl. Phys, 38, pp. 1611-1617; Glass, A., Dielectric, thermal, and pyroelectric properties of ferroelectric LiTaO3 (1968) Phys. Rev, 172, pp. 564-571; Weis, R., Gaylord, T., Lithium niobate: Summary of physical properties and crystal structure (1985) Appl. Phys. A, 37, pp. 191-203; Armstrong, J., Bloembergen, N., Ducuing, J., Pershan, P., Interactions between light waves in a nonlinear dielectric (1962) Phys. Rev, 127, pp. 1918-1939; Matsumoto, S., Lim, E.J., Hertz, H.M., Fejer, M.M., Quasi phase-matched second harmonic generation of blue light in electrically periodically-poled lithium tantalate waveguides (1991) Electronics Letters, 27, pp. 2040-2042; Yamada, M., Nada, N., Saitoh, M., Watanabe, K., First-order quasi-phase matched LiNbO3 waveguide periodically poled by applying an external field for efficient blue second-harmonic generation (1993) Appl. Phys. Lett, 62, pp. 435-436; Hum, D., Fejer, M., Quasi-phasematching (2007) C.R. Phys, 8, pp. 180-198; Valdivia, C., Sones, C., Scott, J., Mailis, S., Eason, R., Scrymgeour, D., Gopalan, V., Clark, I., Nanoscale surface domain formation on the +z face of lithium niobate by pulsed ultraviolet laser illumination (2005) Appl. Phys. Lett, 86, p. 022906; Sones, C., Valdivia, C., Scott, J., Mailis, S., Eason, R., Scrymgeour, D., Gopalan, V., Soergel, E., Ultraviolet laser-induced sub-micron periodic domain formation in congruent undoped lithium niobate crystals (2005) Appl. Phys. B, 80, pp. 341-344; Shur, V., Kuznetsov, D., Lobov, A., Nikolaeva, E., Dolbilov, M., Orlov, A., Osipov, V., Formation of self-similar surface nano-domain structures in lithium niobate under highly nonequilibrium conditions (2006) Ferroelectrics, 341, pp. 85-93; Shur, V., Rumyantsev, E., Shur, A., Lobov, A., Kuznetsov, D., Shishkin, E., Nikolaeva, E., De Micheli, M., Nanoscale domain effect in ferroelectrics, Formation and evolution of self-assembled structures in LiNbO3 and LiTaO3 (2007) Ferroelectrics, 354, pp. 145-157; Kuznetsov, D., Shur, V., Negashev, S., Lobov, A., Pelegov, D., Shishkin, E., Zelenovskiy, P., Osipov, V., Formation of nano-scale domain structures in lithium niobate using high-intensity laser irradiation (2008) Ferroelectrics, 373, pp. 133-138; Shur, V., Kuznetsov, D., Lobov, A., Pelegov, D., Pelegova, E., Osipov, V., Ivanov, M., Orlov, A., Self-similar surface nanodomain structures induced by laser irradiation in lithium niobate (2008) Physics of Solid State, 50, pp. 717-723; Lobov, A., Shur, V., Kuznetsov, D., Negashev, S., Pelegov, D., Shishkin, E., Zelenovskiy, P., Discrete switching by growth of nano-scale domain rays under highly nonequilibrium conditions in lithium niobate single crystals (2008) Ferroelectrics, 373, pp. 99-108; Kuznetsov, D., Shur, V., Mingaliev, E., Negashev, S., Lobov, A., Rumyantsev, E., Novikov, P., Nanoscale domain structuring in lithium niobate single crystals by pulse laser heating (2010) Ferroelectrics, 398, pp. 49-54; Mingaliev, E., Shur, V., Kuznetsov, D., Negashev, S., Lobov, A., Formation of stripe domain structures by pulse laser irradiation of LiNbO3 crystals (2010) Ferroelectrics, 399, pp. 7-13; Shur, V., Kuznetsov, D., Mingaliev, E., Yakunina, E., Lobov, A., Ievlev, A., In situ investigation of formation of self-assembled nanodomain structure in lithium niobate after pulse laser irradiation (2011) Appl. Phys. Lett, 99, p. 082901; Shur, V., Domain nanotechnology in lithium niobate and lithium tantalate crystals (2010) Ferroelectrics, 399, pp. 97-106; Shur, V., Lobov, A., Shur, A., Kurimura, S., Nomura, Y., Terabe, K., Liu, X., Kitamura, K., Rearrangement of ferroelectric domain structure induced by chemical etching (2005) Appl. Phys. Lett, 87, p. 022905; Shur, V., Zelenovskiy, P., Nebogatikov, M., Alikin, D., Sarmanova, M., Ievlev, A., Mingaliev, E., Kuznetsov, D., Investigation of the nanodomain structure formation by piezoelectric force microscopy and Raman confocal microscopy in LiNbO3 and LiTaO3 crystals (2011) J. Appl. Phys, 110, p. 052013; Russ, J., (1994) Fractal Surfaces, , Plenum Press; Shur, V., Gruverman, A., Letuchev, V., Rumyantsev, E., Subbotin, A., Domain structure of lead germanate (1989) Ferroelectrics, 98, pp. 29-49; Gopalan, V., Mitchell, T., Furukawa, Y., Kitamura, K., The Role of nonstoichiometry in 180- degrees domain switching of LiNbO3 crystals (1998) Appl. Phys. Lett, 72, pp. 1981-1983
Correspondence Address Mingaliev, E.A.; Ferroelectric Laboratory, Institute of Natural Science, Ural Federal University, 620000, Ekaterinburg, Russian Federation; email: eugene.mingaliev@labfer.usu.ru
Conference name 11th International Symposium on Ferroic Domains and Micro- to Nanoscopic Structures, ISFD 2012, and 11th Russia/CIS/Baltic/Japan Symposium on Ferroelectricity, RCBJSF 2012
Conference date 20 August 2012 through 24 August 2012
Conference location Ekaterinburg
Conference code 96358
CODEN FEROA
Language of Original Document English
Abbreviated Source Title Ferroelectrics
Source Scopus