Electric field poling of lithium niobate crystals after proton-exchanged channel waveguide fabrication / Smirnova A.N., Mushinskiy S.S., Baturin I.S., Azanova I.S., Shevtsov D.I., Akhmatkhanov A.R., Ievlev A.V., Shur V.Ya. // Ferroelectrics. - 2012. - V. 441, l. 1. - P. 9-16.

ISSN:
00150193
Type:
Conference Paper
Abstract:
An electric field poling and domain evolution in congruent lithium niobate wafers with α phase proton exchanged channel waveguides were studied experimentally. A piezoresponse force microscopy and the study of an etching rate showed a presence of a spontaneous polarization in the waveguide region and an ability to create tailored domain structures inside the proton exchanged channel waveguides. It was shown by the in situ visualization of the domain evolution that the proton exchanged channel waveguide acted as a region with an increased value of a threshold field for domain growth. Copyright © Taylor & Francis Group, LLC.
Author keywords:
Electric-field poling; Lithium niobate; Proton exchange channel waveguide
Index keywords:
Channel waveguide; Congruent lithium niobate; Electric field poling; Lithium niobate; Lithium niobate crystal; Piezoresponse force microscopy; Spontaneous polarizations; Tailored domain structures; El
DOI:
10.1080/00150193.2012.747746
Смотреть в Scopus:
https://www.scopus.com/inward/record.uri?eid=2-s2.0-84875908527&doi=10.1080%2f00150193.2012.747746&partnerID=40&md5=37f0f9e3c2c9bafbec66277897cbede5
Соавторы в МНС:
Другие поля
Поле Значение
Link https://www.scopus.com/inward/record.uri?eid=2-s2.0-84875908527&doi=10.1080%2f00150193.2012.747746&partnerID=40&md5=37f0f9e3c2c9bafbec66277897cbede5
Affiliations Department of Integrated Optics, Perm Scientific Industrial Instrument-Making Company, 614990 Perm, Russian Federation; Ferroelectric Laboratory, Institute of Natural Sciences, Ural Federal University, 620000, Ekaterinburg, Russian Federation
Author Keywords Electric-field poling; Lithium niobate; Proton exchange channel waveguide
References Byer, R.L., Quasi-phasematched nonlinear interactions and devices (1997) J. Nonlinear Opt. Phys. Mater., 6 (4), pp. 549-592; Myers, L.E., Bosenberg, W.R., Periodically poled lithium niobate and quasi-phase-matched optical parametric oscillators (1997) IEEE J. Quantum Electron., 33 (10), pp. 1663-1672; Yamada, M., Saitoh, M., Fabrication of a periodically poled laminar domain structure with a pitch of a few micrometers by applying an external electric field (1998) J. Appl. Phys., 84 (4), pp. 2199-2206; Hempelmann, U., Herrmann, H., Mrozynski, G., Reimann, V., Sohler, W., Integrated optical proton exchanged TM-pass polarizers in LiNbO 3: Modelling and experimental performance (1995) J. Lightwave Technol., 13 (8), pp. 1750-1759; Parameswaran, K.R., Fujimura, M., Chou, M.H., Fejer, M.M., Low-power all-optical gate based on sum frequency mixing in APE waveguides in PPLN (2000) IEEE Photonics Technol. Lett., 12 (6), pp. 654-656; Ponomarev, R.S., Volynsev, A.B., LiNbO3 defect structure influence on the integrated optical circuit operation (2012) Bulletin of Perm University, Series Physics, 2, pp. 72-77; Dolbilov, M.A., Shur, V.Y., Shishkin, E.I., Sarmanova, M.F., Nikolaeva, V.E., Tascu, S., Baldi, P., De Micheli, M.P., Influence of surface layers modified by proton exchange on domain kinetics of lithium niobate (2008) Ferroelectrics, 374 (1), pp. 14-19; Dolbilov, M.A., Shishkin, E.I., Shur, V.Y., Tascu, S., Baldi, P., De Micheli, M.P., Abnormal domain growth in lithium niobate with surface layer modified by proton exchange (2010) Ferroelectrics, 398 (1), pp. 108-114; De Micheli, M.P., Fabrication and characterization of proton exchanged waveguides in periodically poled congruent lithium niobate (2006) Ferroelectrics, 340 (1), pp. 49-62; Grilli, S., Canalias, C., Laurell, F., Ferraro, P., De Natale, P., Control of lateral domain spreading in congruent lithium niobate by selective proton exchange (2006) Appl. Phys. Lett., 89 (3), p. 032902; Korkishko, Y.N., Fedorov, V.A., Structural phase diagram of HxLi1-xNbO3 waveguides: The correlation between optical and structural properties (1996) IEEE J. Sel. Top. Quantum Electron., 2 (2), pp. 187-196; White, J.M., Heidrich, P.F., Optical waveguide refractive index profiles determined from measurement of mode indices: A simple analysis (1976) Appl. Opt., 15 (1), pp. 151-155; Baturin, I.S., Konev, M.V., Akhmatkhanov, A.R., Lobov, A.I., Shur, Ya.V., Investigation of jerky domain wall motion in lithium niobate (2008) Ferroelectrics, 374 (1), pp. 136-143; Sones, C.L., Mailis, S., Brocklesby, W.S., Eason, R.W., Owen, J.R., Differential etch rates in Z-cut LiNbO3 for variable HF/HNO3 concentrations (2002) J. Mater. Chem., 12 (2), pp. 295-298; Alexe, M., Gruverman, A., (2004) Nanoscale Characterisation of Ferroelectric Materials, , Springer, Berlin; Jungk, T., Hoffmann, A., Soergel, E., Quantitative analysis of ferroelectric domain imaging with piezoresponse force microscopy (2006) Appl. Phys. Lett., 89 (16), p. 163507; Shishkin, E.I., Ievlev, A.V., Nikolaeva, E.V., Nebogatikov, M.S., Shur, Ya.V., Local study of polarization reversal kinetics in ferroelectric crystals using scanning probe microscopy (2008) Ferroelectrics, 374 (1), pp. 26-32; Johann, F., Ying, Y.J., Jungk, T., Hoffmann, A., Sones, C.L., Eason, R.W., Mailis, S., Soergel, E., Depth resolution of piezoresponse force microscopy (2009) Appl. Phys. Lett., 94 (17), p. 172904; Shur, Ya.V., Rumyantsev, E.L., Batchko, R.G., Miller, G.D., Fejer, M.M., Byer, R.L., Domain kinetics in the formation of a periodic domain structure in lithium niobate (1999) Phys. Solid State, 41 (10), pp. 1681-1687; Lobov, A.I., Shur, V.Y., Baturin, I.S., Shishkin, E.I., Kuznetsov, D.K., Shur, A.G., Dolbilov, M.A., Gallo, K., Field induced evolution of regular and random 2D domain structures and shape of isolated domains in LiNbO3 and LiTaO3 (2006) Ferroelectrics, 341 (1), pp. 109-116; Shur, V.Y., Akhmatkhanov, A.R., Baturin, I.S., Shishkina, E.V., Polarization reversal and jump-like domain wall motion in stoichiometric LiTaO3 produced by vapor transport equilibration (2012) J. Appl. Phys., 111 (1), p. 014101
Correspondence Address Smirnova, A.N.; Department of Integrated Optics, Perm Scientific Industrial Instrument-Making Company, 614990 Perm, Russian Federation; email: anna.nikol.smirnova@gmail.com
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