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Dynamics of domain structure in uniaxial ferroelectrics
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Physical basis of the domain engineering in the bulk ferroelectrics
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Raman studies of ferroelectric domain walls in lithium tantalate and niobate
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Characterization of PPLN-microstructures by means of raman spectroscopy
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Observation and manipulation of the as-grown maze domain structure in lead germanate by scanning force microscopy
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E. I. Shishkin, V. Ya. Shur, F. Schlaphof, and L. M. Eng, Observation and manipulation of the as-grown maze domain structure in lead germanate by scanning force microscopy. Appl. Phys. Lett. 88, 252902-252905 (2006).
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Continuous-wave quasi-phase-matched generation of 60 mW at 465 nm by single-pass frequency doubling of a laser diode in backswitch-poled lithium niobate
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R. G. Batchko, M. M. Fejer, R. L. Byer, D. Woll, R. Wallenstein, V. Ya. Shur, and L. Erman, Continuous-wave quasi-phase-matched generation of 60 mW at 465 nm by single-pass frequency doubling of a laser diode in backswitch-poled lithium niobate. Opt. Lett. 24(18), 1293-1295 (1999).
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Fabrication and characterization of proton exchanged waveguides in periodically poled congruent lithium niobate
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Formation of self-organized nanodomain patterns during spontaneous backswitching in lithium niobate
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Correlated nucleation and self-organized kinetics of ferroelectric domains
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Modeling and measuring the effect of refraction on the depth resolution of confocal raman microscopy
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Micro- and nanoscale domain engineering in lithium niobate and lithium tantalate
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Influence of surface layers modified by proton exchange on domain kinetics of lithium niobate
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M. A. Dolbilov, V. Ya. Shur, E. I. Shishkin, M. F. Sarmanova, E. V. Nikolaeva, S. Tascu, P. Baldi, and M. P. DeMicheli, Influence of surface layers modified by proton exchange on domain kinetics of lithium niobate. Ferroelectrics 374, 158-163 (2008).
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