2017
DOI: 10.1038/nmat5017
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Towards properties on demand in quantum materials

Abstract: Q uantum materials are on the ascent. This term embodies a vast portfolio of compounds and phenomena where ramifications of quantum mechanics are demonstrably real. Quantum materials are in the vanguard of contemporary physics in part because these systems afford an exceptional venue to uncover the many roles of symmetry, topology, dimensionality and strong correlations in macroscopic observables. Here we set out to explore the ways and means of creating new states of matter in quantum materials and manipulati… Show more

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Cited by 703 publications
(539 citation statements)
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“…Controlling material properties by external driving is one of the ultimate goals of modern condensed matter physics. Light is one of the most important drivers to realize ultrafast control of material properties [1,2]. A strong terahertz field can couple with a specific phonon mode in solids and largely populate the phonon mode.…”
Section: Introductionmentioning
confidence: 99%
“…Controlling material properties by external driving is one of the ultimate goals of modern condensed matter physics. Light is one of the most important drivers to realize ultrafast control of material properties [1,2]. A strong terahertz field can couple with a specific phonon mode in solids and largely populate the phonon mode.…”
Section: Introductionmentioning
confidence: 99%
“…Controlling and manipulating materials properties by driving them out of equilibrium is fast emerging as an exciting field of research [1]. Prominent examples include signatures of light-induced [2] or light-enhanced [3] superconductivity, ultrafast switching of hidden electronic phases [4] and phonon-induced magnetization [5].…”
Section: Introductionmentioning
confidence: 99%
“…Besides theoretically demonstrating coherent control of crystallographic Higgs and Goldstone excitations, we show that the previously inaccessible silent phonon modes can be excited coherently with this mechanism.Order parameters are physical observables that are used to quantify the different states of matter. Their amplitudes and phases can be excited by external stimuli, such as a laser pulse, leading to exotic states of matter that cannot be accessed in equilibrium [1]. Two particular excitations are Higgs and Goldstone modes, which correspond to the modulation of the amplitude and phase of an order parameter that breaks a continuous symmetry.…”
mentioning
confidence: 99%