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Universal visible emitters in nanoscale integrated photonics

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arxiv 2206.11966 v1 pith:I423VAWA submitted 2022-06-23 physics.optics physics.app-phphysics.atom-ph

Universal visible emitters in nanoscale integrated photonics

classification physics.optics physics.app-phphysics.atom-ph
keywords quantumvisibletechnologiesatomsbeamscontroldirectlyemitters
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Visible wavelengths of light control the quantum matter of atoms and molecules and are foundational for quantum technologies, including computers, sensors, and clocks. The development of visible integrated photonics opens the possibility for scalable circuits with complex functionalities, advancing both the scientific and technological frontiers. We experimentally demonstrate an inverse design approach based on superposition of guided-mode sources, allowing the generation and full control of free-space radiation directly from within a single 150 nm layer Ta2O5, showing low loss across visible and near-infrared spectra. We generate diverging circularly-polarized beams at the challenging 461 nm wavelength that can be directly used for magneto-optical traps of strontium atoms, constituting a fundamental building block for a range of atomic-physics-based quantum technologies. Our generated topological vortex beams and spatially-varying polarization emitters could open unexplored light-matter interaction pathways, enabling a broad new photonic-atomic paradigm. Our platform highlights the generalizability of nanoscale devices for visible-laser emission and will be critical for scaling quantum technologies.

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