Kapitza stabilization of quantum critical order
Dushko Kuzmanovski, Jonathan Schmidt, Nicola A. Spaldin, Henrik M., R{\o}nnow, Gabriel Aeppli, Alexander V. Balatsky

TL;DR
This paper proposes a method called Kapitza engineering to stabilize quantum critical ferroelectric order using high-frequency electric fields, with potential applications in manipulating material phases.
Contribution
It introduces a quantum field theory framework for Kapitza stabilization of order and demonstrates its application to ferroelectrics like SrTiO3 using DFT calculations.
Findings
High-frequency electric fields can induce ferroelectric order in quantum-critical materials.
SrTiO3 is not optimal for Kapitza stabilization, but other materials can be identified computationally.
Stabilized order can persist at low temperatures due to strain effects.
Abstract
Dynamical perturbations modify the states of classical systems in surprising ways and give rise to important applications in science and technology. For example, Floquet engineering exploits the possibility of band formation in the frequency domain when a strong, periodic variation is imposed on parameters such as spring constants. We describe here Kapitza engineering, where a drive field oscillating at a frequency much higher than the characteristic frequencies for the linear response of a system changes the potential energy surface so much that maxima found at equilibrium become local minima, in precise analogy to the celebrated Kapitza pendulum where the unstable inverted configuration, with the mass above rather than below the fulcrum, actually becomes stable. Our starting point is a quantum field theory of the Ginzburg-Devonshire type, suitable for many condensed matter systems,…
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