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      Monolithically integrated waveguide-coupled single-frequency microlaser on erbium-doped thin film lithium niobate

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          Abstract

          We overcome the difficulty in realizing a monolithic waveguide-coupled microring laser integrated on erbium-doped thin film lithium niobate (Er: TFLN) using photolithography assisted chemo-mechanical etching (PLACE) technique. We demonstrate an integrated single-frequency microring laser operating around 1531 nm wavelength. The PLACE technique, enabling integrated Er: TFLN photonics with low propagation loss, can thus be used to realize low cost mass production of monolithic on-chip microlasers with applications ranging from optical communication and photonic integrated circuit (PIC) to precision metrology and large-scale sensing.

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          Author and article information

          Journal
          28 January 2022
          Article
          2201.11959
          fab4a68c-e5cf-4b70-adb7-a76a028910bf

          http://creativecommons.org/licenses/by/4.0/

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          Custom metadata
          4 pages, 5 figures
          physics.optics physics.app-ph

          Technical & Applied physics,Optical materials & Optics
          Technical & Applied physics, Optical materials & Optics

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