Conductive domain walls (DWs) in insulating ferroelectrics have recently attracted considerable attention due to their unique topological, optical, and electronic properties, and offer potential applications such as in memory devices or rewritable circuitry. The electronic properties of DWs can be tuned by the application of strain, hence controlling the charge carrier density at DWs. In this paper, we study the influence of uniaxial stress on the conductivity of DWs in the bulk single crystal lithium niobate (LiNbO3). Using conductive atomic force microscopy, we observe a large asymmetry in the conductivity of DWs, where only negatively screened walls, so called head-to-head DWs, are becoming increasingly conductive, while positively scree...
Ferroic materials play an increasingly important role in novel (nano-)electronic applications. Recen...
We investigate the structural and electronic properties of domain walls to achieve a better understa...
We have used high-voltage Kelvin probe force microscopy to map the spatial distribution of electrica...
Conductive domain walls (CDWs) in insulating ferroelectrics have recently attracted considerable att...
Ferroic materials play an increasingly important role in novel (nano-)electronic applications. Recen...
Conductive domain walls (DWs) in lithium niobate (LiNbO3, LNO) are promising constituents for potent...
Conductive domain walls (DWs) in lithium niobate (LiNbO3, LNO) are promising constituents for potent...
Charged domain walls (CDWs) in ferroelectric materials raise both fundamental and practical interest...
Conductive domain walls (DWs) in lithium niobate (LiNbO3, LNO) are promising constituents for potent...
Ferroelectric domain walls are interfaces between areas of a material that exhibits different direct...
In this work, the effect of long-term room temperature exposure on the electrical conductivity of th...
Ferroelectric lithium niobate (LiNbO3) crystals with an engineered domain structure have a number of...
Domain walls (DWs) in ferroelectric/ferroic materials have been a central research focus for the las...
The research was funded by RFBR (grant № 18-32-00641). The equipment of the Ural Center for Shared U...
Conductive domain walls (DWs) in ferroic oxides as device elements are a highly attractive research ...
Ferroic materials play an increasingly important role in novel (nano-)electronic applications. Recen...
We investigate the structural and electronic properties of domain walls to achieve a better understa...
We have used high-voltage Kelvin probe force microscopy to map the spatial distribution of electrica...
Conductive domain walls (CDWs) in insulating ferroelectrics have recently attracted considerable att...
Ferroic materials play an increasingly important role in novel (nano-)electronic applications. Recen...
Conductive domain walls (DWs) in lithium niobate (LiNbO3, LNO) are promising constituents for potent...
Conductive domain walls (DWs) in lithium niobate (LiNbO3, LNO) are promising constituents for potent...
Charged domain walls (CDWs) in ferroelectric materials raise both fundamental and practical interest...
Conductive domain walls (DWs) in lithium niobate (LiNbO3, LNO) are promising constituents for potent...
Ferroelectric domain walls are interfaces between areas of a material that exhibits different direct...
In this work, the effect of long-term room temperature exposure on the electrical conductivity of th...
Ferroelectric lithium niobate (LiNbO3) crystals with an engineered domain structure have a number of...
Domain walls (DWs) in ferroelectric/ferroic materials have been a central research focus for the las...
The research was funded by RFBR (grant № 18-32-00641). The equipment of the Ural Center for Shared U...
Conductive domain walls (DWs) in ferroic oxides as device elements are a highly attractive research ...
Ferroic materials play an increasingly important role in novel (nano-)electronic applications. Recen...
We investigate the structural and electronic properties of domain walls to achieve a better understa...
We have used high-voltage Kelvin probe force microscopy to map the spatial distribution of electrica...