We review some recent advances in the use of optical fields at terahertz frequencies to drive the lattice of complex materials. We will focus on the control of low energy collective properties of solids, which emerge on average when a high frequency vibration is driven and a new crystal structure induced. We first discuss the fundamentals of these lattice rearrangements, based on how anharmonic mode coupling transforms an oscillatory motion into a quasi-static deformation of the crystal structure. We then discuss experiments, in which selectively changing a bond angle turns an insulator into a metal, accompanied by changes in charge, orbital and magnetic order. We then address the case of light induced non-equilibrium superconductivity, a m...
The Raman effect, inelastic scattering of light by lattice vibrations (phonons), produces an optical...
Rapid developments in ultrafast laser technology over the past decade have enabled the generation of...
Mid-infrared light pulses can be used to resonantly excite infrared-active vibrational modes for the...
We review some recent advances in the use of optical fields at terahertz frequencies to drive the la...
We review some recent advances in the use of optical fields at terahertz frequencies to drive the la...
We present a microscopic theory for ultrafast control of solids with high-intensity terahertz freque...
Strong optical pulses at mid-infrared and terahertz frequencies have recently emerged as powerful to...
Driving phase changes by selective optical excitation of specific vibrational modes in molecular and...
Driving phase changes by selective optical excitation of specific vibrational modes in molecular and...
Driving phase changes by selective optical excitation of specific vibrational modes in molecular and...
CONSPECTUS: Driving phase changes by selective optical excitation of specific vibrational modes in m...
Light fields at terahertz and mid-infrared frequencies allow for the direct excitation of collective...
Light fields at terahertz and mid-infrared frequencies allow for the direct excitation of collective...
Light fields at terahertz and mid-infrared frequencies allow for the direct excitation of collective...
Quantum-mechanical phenomena underpin the behaviour of quantum materials at the microscopic level. T...
The Raman effect, inelastic scattering of light by lattice vibrations (phonons), produces an optical...
Rapid developments in ultrafast laser technology over the past decade have enabled the generation of...
Mid-infrared light pulses can be used to resonantly excite infrared-active vibrational modes for the...
We review some recent advances in the use of optical fields at terahertz frequencies to drive the la...
We review some recent advances in the use of optical fields at terahertz frequencies to drive the la...
We present a microscopic theory for ultrafast control of solids with high-intensity terahertz freque...
Strong optical pulses at mid-infrared and terahertz frequencies have recently emerged as powerful to...
Driving phase changes by selective optical excitation of specific vibrational modes in molecular and...
Driving phase changes by selective optical excitation of specific vibrational modes in molecular and...
Driving phase changes by selective optical excitation of specific vibrational modes in molecular and...
CONSPECTUS: Driving phase changes by selective optical excitation of specific vibrational modes in m...
Light fields at terahertz and mid-infrared frequencies allow for the direct excitation of collective...
Light fields at terahertz and mid-infrared frequencies allow for the direct excitation of collective...
Light fields at terahertz and mid-infrared frequencies allow for the direct excitation of collective...
Quantum-mechanical phenomena underpin the behaviour of quantum materials at the microscopic level. T...
The Raman effect, inelastic scattering of light by lattice vibrations (phonons), produces an optical...
Rapid developments in ultrafast laser technology over the past decade have enabled the generation of...
Mid-infrared light pulses can be used to resonantly excite infrared-active vibrational modes for the...