Optical Switching of $χ^{(2)}$ in Diamond Photonics

Fuente: arXiv
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Main Authors: Flågan, Sigurd, Itoi, Joe, Shandilya, Prasoon K., Kavatamane, Vinaya K., Mitchell, Matthew, Lake, David P., Barclay, Paul E.
Format: Preprint
Published: 2024
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author Flågan, Sigurd
Itoi, Joe
Shandilya, Prasoon K.
Kavatamane, Vinaya K.
Mitchell, Matthew
Lake, David P.
Barclay, Paul E.
author_facet Flågan, Sigurd
Itoi, Joe
Shandilya, Prasoon K.
Kavatamane, Vinaya K.
Mitchell, Matthew
Lake, David P.
Barclay, Paul E.
contents Diamond's unique physical properties make it a versatile materials for a wide range of nonlinear and quantum photonic technologies. However, unlocking diamond's full potential as a nonlinear photonic material with non-zero second-order susceptibility $χ^{(2)}\neq0$ requires symmetry breaking. In this work, we use a nanoscale cavity to demonstrate second-harmonic generation (SHG) in diamond, and demonstrate, for the first time, that the magnitude of the diamond's effective $χ^{(2)}$ strongly depends on the electronic configuration of defects in the diamond crystal, such as nitrogen vacancy centres. The modification of $χ^{(2)}$ arises from photoionisation from the negative to neutral charge state, and is manifested by quenching of SHG upon green illumination. Toggling the green illumination allows for optical switching of the device's $χ^{(2)}$. Optical control of $χ^{(2)}$ by defect engineering opens the door for second-order nonlinear processes in diamond.
format Preprint
id arxiv_https___arxiv_org_abs_2412_06792
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Optical Switching of $χ^{(2)}$ in Diamond Photonics
Flågan, Sigurd
Itoi, Joe
Shandilya, Prasoon K.
Kavatamane, Vinaya K.
Mitchell, Matthew
Lake, David P.
Barclay, Paul E.
Optics
Mesoscale and Nanoscale Physics
Quantum Physics
Diamond's unique physical properties make it a versatile materials for a wide range of nonlinear and quantum photonic technologies. However, unlocking diamond's full potential as a nonlinear photonic material with non-zero second-order susceptibility $χ^{(2)}\neq0$ requires symmetry breaking. In this work, we use a nanoscale cavity to demonstrate second-harmonic generation (SHG) in diamond, and demonstrate, for the first time, that the magnitude of the diamond's effective $χ^{(2)}$ strongly depends on the electronic configuration of defects in the diamond crystal, such as nitrogen vacancy centres. The modification of $χ^{(2)}$ arises from photoionisation from the negative to neutral charge state, and is manifested by quenching of SHG upon green illumination. Toggling the green illumination allows for optical switching of the device's $χ^{(2)}$. Optical control of $χ^{(2)}$ by defect engineering opens the door for second-order nonlinear processes in diamond.
title Optical Switching of $χ^{(2)}$ in Diamond Photonics
topic Optics
Mesoscale and Nanoscale Physics
Quantum Physics
url https://arxiv.org/abs/2412.06792