Nonlinear Response via Sublinear Optics
Mykhaylo Khoma, Valeriia Bilokon, Elvira Bilokon, Denys I. Bondar
Abstract
Sublinear optical response, in which the emitted field scales as a fractional power of the driving field, lies beyond the conventional perturbative hierarchy of nonlinear optics. Here, we show that such a response can be engineered in a hydrogen atom using tracking control. Rather than prescribing the driving waveform, the field is determined self-consistently from the evolving quantum state to enforce a chosen relation between the optical response and the applied field. We demonstrate accurate tracking for multiple exponents and scaling strengths, establishing that a single atomic system can be driven to realize a family of distinct sublinear responses. The calculations are enabled by a compact wave-packet continuum discretization that treats bound and continuum states on equal footing and is applied here, to the best of our knowledge, for the first time to strong-field optics and quantum control. These results establish tracking control as a general route to engineering optical responses beyond conventional polynomial nonlinearities.
Create a lesson
Related papers
Directional pumping of a two-level system by a fluctuation-regulated quantum source
Sarfraj Fency, Rangeet Bhattacharyya
Correlation measure for statistical systems
V. I. Yukalov, E. P. Yukalova
General Photon Subtraction from a Gaussian Perspective
Niklas Budinger, Ulrik L. Andersen, Peter van Loock
Efficient Simulation of Hybrid Continuous- and Discrete-Variable Quantum Circuits via Gaussian Decompositions
Kazufumi Tanji, Dot Belin Pio, Shohei Kiryu et al.
Cubic Phase Gate with a Trapped Ion Oscillator
Nigel Benjamin Lee Junsheng, Eugene Koh Jun Wei, Mu Young Kim et al.
Log-Euclidean Rényi Conditional Mutual Information
Roberto Rubboli, Amir Arqand, Mark M. Wilde