Active optical control over matter is desirable in many scientific disciplines, with prominent examples in all-optical magnetic switching1,2, light-induced metastable or exotic phases of solids3,4,5,6,7,8 and the coherent control of chemical reactions9,10. Typically, these approaches dynamically steer a system towards states or reaction products far from equilibrium. In solids, metal-to-insulator transitions are an important target for optical manipulation, offering ultrafast changes of the electronic4 and lattice11,12,13,14,15,16 properties. The impact of coherences on the efficiencies and thresholds of such transitions, however, remains a largely open subject. Here, we demonstrate coherent control over a metal–insulator structural phase t...
International audienceWe combine ultrafast optical spectroscopy with femtosecond X-ray absorption to...
In solids, the response of the lattice to photoexcitation is often described by the inertial evoluti...
In solids, the response of the lattice to photo-excitation is often described by the inertial evolut...
The present thesis explores the coherent control of surface structural phase transitions by all-opti...
Exploiting vibrational excitation for the dynamic control of material properties is an attractive go...
Transient control over the atomic potential-energy landscapes of solids could lead to new states of ...
Addressing the role of quantum coherence in the interplay between the different matter constituents ...
Exciting electrons in solids with intense light pulses offers the possibility of generating new stat...
Driving phase changes by selective optical excitation of specific vibrational modes in molecular and...
Excitation of optical transitions in solids using ultrashort pulses of light allows to selectively p...
The study of photoexcited strongly correlated materials is attracting growing interest since their r...
Elucidating the role of different degrees of freedom in a phase transition is crucial in the compreh...
The ultrafast on demand control of functional materials is fundamental for highspeed new generation ...
Photoinduced spin transitions are studied by femtosecond electron diffraction to understand ultrafas...
Selective optical excitation of a substrate lattice can drive phase changes across heterointerfaces....
International audienceWe combine ultrafast optical spectroscopy with femtosecond X-ray absorption to...
In solids, the response of the lattice to photoexcitation is often described by the inertial evoluti...
In solids, the response of the lattice to photo-excitation is often described by the inertial evolut...
The present thesis explores the coherent control of surface structural phase transitions by all-opti...
Exploiting vibrational excitation for the dynamic control of material properties is an attractive go...
Transient control over the atomic potential-energy landscapes of solids could lead to new states of ...
Addressing the role of quantum coherence in the interplay between the different matter constituents ...
Exciting electrons in solids with intense light pulses offers the possibility of generating new stat...
Driving phase changes by selective optical excitation of specific vibrational modes in molecular and...
Excitation of optical transitions in solids using ultrashort pulses of light allows to selectively p...
The study of photoexcited strongly correlated materials is attracting growing interest since their r...
Elucidating the role of different degrees of freedom in a phase transition is crucial in the compreh...
The ultrafast on demand control of functional materials is fundamental for highspeed new generation ...
Photoinduced spin transitions are studied by femtosecond electron diffraction to understand ultrafas...
Selective optical excitation of a substrate lattice can drive phase changes across heterointerfaces....
International audienceWe combine ultrafast optical spectroscopy with femtosecond X-ray absorption to...
In solids, the response of the lattice to photoexcitation is often described by the inertial evoluti...
In solids, the response of the lattice to photo-excitation is often described by the inertial evolut...