On-demand continuous-variable quantum entanglement source for integrated circuits
Mehmet G\"unay, Priyam Das, Emre Yuce, Emre Ozan Polat, Alpan Bek,, Mehmet Emre Tasgin

TL;DR
This paper introduces a voltage-tunable, micron-scale quantum entanglement source integrated into photonic circuits, enabling precise control of nonclassicality generation via Fano resonance in a nonlinear response.
Contribution
It presents a novel voltage-controlled entanglement device using QE-MNS coupling to modulate nonlinearity over several orders of magnitude.
Findings
Nonlinearity can be tuned by voltage without changing linear response.
Fano resonance enables continuous on/off switching of nonclassicality.
Achieves up to 5 orders of magnitude modulation depth.
Abstract
Integration of devices generating nonclassical states~(such as entanglement) into photonic circuits is one of the major goals in achieving integrated quantum circuits~(IQCs). This is demonstrated successfully in recent decades. Controlling the nonclassicality generation in these micron-scale devices is also crucial for the robust operation of the IQCs. Here, we propose a micron-scale quantum entanglement device whose nonlinearity (so the generated nonclassicality) can be tuned by several orders of magnitude via an \textit{applied voltage} without altering the linear response. Quantum emitters~(QEs), whose level-spacing can be tuned by voltage, are embedded into the hotspot of a metal nanostructure~(MNS). QE-MNS coupling introduces a Fano resonance in the ``nonlinear response''. Nonlinearity, already enhanced extremely due to localization, can be controlled by the QEs' level-spacing.…
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Taxonomy
TopicsPhotonic and Optical Devices · Mechanical and Optical Resonators · Plasmonic and Surface Plasmon Research
