I propose a method for ultrafast switching of ferroelectric polarization using midinfrared pulses. This involves selectively exciting the highest frequency A$_1$ phonon mode of a ferroelectric material with an intense midinfrared pulse. Large amplitude oscillations of this mode provides a unidirectional force to the lattice such that it displaces along the lowest frequency A$_1$ phonon mode coordinate because of a nonlinear coupling of the type $_g$Q$_P$Q$^2_{IR}$ between the two modes. First-principles calculations show that this coupling is large in perovskite transition-metal oxide ferroelectrics, and the sign of the coupling is such that the lattice displaces in the switching direction. Furthermore, I find that the lowest frequency A1 m...
Ferroelectric materials have established themselves as indispensable in key applications such as pie...
We present a microscopic theory for ultrafast control of solids with high-intensity terahertz freque...
Polarization switching in a ferroelectric subjected to an electric field or a stress field is simula...
International audienceAbstract Ultrafast light-matter interactions present a promising route to cont...
The response of a soft-phonon ferroelectric material subjected to a high-intensity optical pulse of ...
The ability to manipulate ferroelectrics at ultrafast speeds has long been an elusive target for mat...
Ultrafast optical control of ferroelectricity using intense terahertz fields has attracted significa...
Resonant ultrafast excitation of infrared-active phonons is a powerful technique with which to contr...
A theory describing how ferroic properties can emerge transiently in the ultra-fast regime by breaki...
Ferroelectrics are multifunctional smart materials finding applications in sensor technology, microm...
Abstract Ferroelectric materials have been a key research topic owing to their wide variety of moder...
Contains fulltext : 92590.pdf (publisher's version ) (Open Access
International audienceThe ability to generate efficient giga–terahertz coherent acoustic phonons wit...
Ferroelectric materials have established themselves as indispensable in key applications such as pie...
We present a microscopic theory for ultrafast control of solids with high-intensity terahertz freque...
Polarization switching in a ferroelectric subjected to an electric field or a stress field is simula...
International audienceAbstract Ultrafast light-matter interactions present a promising route to cont...
The response of a soft-phonon ferroelectric material subjected to a high-intensity optical pulse of ...
The ability to manipulate ferroelectrics at ultrafast speeds has long been an elusive target for mat...
Ultrafast optical control of ferroelectricity using intense terahertz fields has attracted significa...
Resonant ultrafast excitation of infrared-active phonons is a powerful technique with which to contr...
A theory describing how ferroic properties can emerge transiently in the ultra-fast regime by breaki...
Ferroelectrics are multifunctional smart materials finding applications in sensor technology, microm...
Abstract Ferroelectric materials have been a key research topic owing to their wide variety of moder...
Contains fulltext : 92590.pdf (publisher's version ) (Open Access
International audienceThe ability to generate efficient giga–terahertz coherent acoustic phonons wit...
Ferroelectric materials have established themselves as indispensable in key applications such as pie...
We present a microscopic theory for ultrafast control of solids with high-intensity terahertz freque...
Polarization switching in a ferroelectric subjected to an electric field or a stress field is simula...