We present a room temperature technique for optically inducing periodic domain-inverted structures in bulk (0.2mm thick) LiTaO3. By simultaneous application of an electric field and patterned illumination using UV wavelengths (351nm and 364nm) we demonstrate modulation of the resulting domain profile. We discuss the origins of the observed optical effect and describe our results from repeated domain switching, by cycling the electric field
[[abstract]]We found the ferroelectric coercive field of LiTaO3, both in forward and reverse directi...
Ferroelectric materials such as lithium niobate (LN) or lithium tantalate (LT) are examples of an ex...
The shapes of isolated domains produced by application of the uniform external electric field in dif...
Quasi-phase matching by periodical inversion of ferroelectric domains can achieve high conversion ef...
Several methods have been applied to obtain the crystals with regular domain structures. The most co...
[[abstract]]We found that the ferroelectric coercive field of LiTaO3, both in forward and reverse di...
We report a room temperature technique for periodically inverting the domain structure in a lithium ...
The influence of illumination on ferroelectric domain engineering in lithium niobate and lithium tan...
The influence of illumination on ferroelectric domain engineering in lithium niobate and lithium tan...
Fabrication of periodically inverted domain patterns in ferroelectric materials such as lithium niob...
Precision-scale engineering of domains in ferroelectric lithium niobate crystals is a subject of ext...
Lithium niobate (LiNbO3) crystals have been widely used in many nonlinear optical processes such as ...
Ferroelectric domain engineering in lithium niobate (LN) is a subject of extensive research mainly f...
This thesis presents the results of investigations into the thermal and optical control of ferroelec...
Domain engineering of LiNbO3 has been researched for a range of applications in areas as diverse as ...
[[abstract]]We found the ferroelectric coercive field of LiTaO3, both in forward and reverse directi...
Ferroelectric materials such as lithium niobate (LN) or lithium tantalate (LT) are examples of an ex...
The shapes of isolated domains produced by application of the uniform external electric field in dif...
Quasi-phase matching by periodical inversion of ferroelectric domains can achieve high conversion ef...
Several methods have been applied to obtain the crystals with regular domain structures. The most co...
[[abstract]]We found that the ferroelectric coercive field of LiTaO3, both in forward and reverse di...
We report a room temperature technique for periodically inverting the domain structure in a lithium ...
The influence of illumination on ferroelectric domain engineering in lithium niobate and lithium tan...
The influence of illumination on ferroelectric domain engineering in lithium niobate and lithium tan...
Fabrication of periodically inverted domain patterns in ferroelectric materials such as lithium niob...
Precision-scale engineering of domains in ferroelectric lithium niobate crystals is a subject of ext...
Lithium niobate (LiNbO3) crystals have been widely used in many nonlinear optical processes such as ...
Ferroelectric domain engineering in lithium niobate (LN) is a subject of extensive research mainly f...
This thesis presents the results of investigations into the thermal and optical control of ferroelec...
Domain engineering of LiNbO3 has been researched for a range of applications in areas as diverse as ...
[[abstract]]We found the ferroelectric coercive field of LiTaO3, both in forward and reverse directi...
Ferroelectric materials such as lithium niobate (LN) or lithium tantalate (LT) are examples of an ex...
The shapes of isolated domains produced by application of the uniform external electric field in dif...