The light-matter interaction can be utilized to qualitatively alter physical properties of materials. Recent theoretical and experimental studies have explored this possibility of controlling matter by light based on driving many-body systems via strong classical electromagnetic radiation, leading to a time-dependent Hamiltonian for electronic or lattice degrees of freedom. To avoid inevitable heating, pump-probe setups with ultrashort laser pulses have so far been used to study transient light-induced modifications in materials. Here, we pursue yet another direction of controlling quantum matter by modifying quantum fluctuations of its electromagnetic environment. In contrast to earlier proposals on light-enhanced electron-electron interac...
AbstractFrontier quantum engineering tasks require reliable control over light-matter interaction dy...
In this article, we review strong light-matter coupling at the interface of materials science, quant...
Recent studies of light–matter interaction reveal that light can significantly manipulate materials’...
The light-matter interaction can be utilized to qualitatively alter physical properties of materials...
The light-matter interaction can be utilized to qualitatively alter physical properties of materials...
Optical cavities confine light on a small region in space, which can result in a strong coupling of ...
The emergent field of cavity quantum materials bridges collective many-body phenomena in solid state...
So far, laser control of solids has been mainly discussed in the context of strong classical nonline...
Pump-probe experiments have suggested the possibility to control electronic correlations by driving ...
Cavity modification of material properties and phenomena is a novel research field largely motivated...
Controlling collective phenomena in quantum materials is a promising route toward engineering materi...
The hybridization between light and matter forms the basis to achieve cavity control over quantum ma...
Zero point fluctuations of the electromagnetic radiation field have profound effects on the electron...
We study two-dimensional materials where electrons are coupled to the vacuum electromagnetic field o...
In this work, we provide an overview of how well-established concepts in the fields of quantum chemi...
AbstractFrontier quantum engineering tasks require reliable control over light-matter interaction dy...
In this article, we review strong light-matter coupling at the interface of materials science, quant...
Recent studies of light–matter interaction reveal that light can significantly manipulate materials’...
The light-matter interaction can be utilized to qualitatively alter physical properties of materials...
The light-matter interaction can be utilized to qualitatively alter physical properties of materials...
Optical cavities confine light on a small region in space, which can result in a strong coupling of ...
The emergent field of cavity quantum materials bridges collective many-body phenomena in solid state...
So far, laser control of solids has been mainly discussed in the context of strong classical nonline...
Pump-probe experiments have suggested the possibility to control electronic correlations by driving ...
Cavity modification of material properties and phenomena is a novel research field largely motivated...
Controlling collective phenomena in quantum materials is a promising route toward engineering materi...
The hybridization between light and matter forms the basis to achieve cavity control over quantum ma...
Zero point fluctuations of the electromagnetic radiation field have profound effects on the electron...
We study two-dimensional materials where electrons are coupled to the vacuum electromagnetic field o...
In this work, we provide an overview of how well-established concepts in the fields of quantum chemi...
AbstractFrontier quantum engineering tasks require reliable control over light-matter interaction dy...
In this article, we review strong light-matter coupling at the interface of materials science, quant...
Recent studies of light–matter interaction reveal that light can significantly manipulate materials’...