Dual-microcavity narrow-linewidth Brillouin laser

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dc.contributor.authorLoh, Williamko
dc.contributor.authorGreen, Adam A. S.ko
dc.contributor.authorBaynes, Fred N.ko
dc.contributor.authorCole, Daniel C.ko
dc.contributor.authorQuinlan, Franklyn J.ko
dc.contributor.authorLee, Hansuekko
dc.contributor.authorVahala, Kerry J.ko
dc.contributor.authorPapp, Scott B.ko
dc.contributor.authorDiddams, Scott A.ko
dc.date.accessioned2015-06-24T02:17:53Z-
dc.date.available2015-06-24T02:17:53Z-
dc.date.created2015-06-10-
dc.date.created2015-06-10-
dc.date.created2015-06-10-
dc.date.created2015-06-10-
dc.date.issued2015-03-
dc.identifier.citationOPTICA, v.2, no.3, pp.225 - 232-
dc.identifier.issn2334-2536-
dc.identifier.urihttp://hdl.handle.net/10203/198970-
dc.description.abstractUltralow-noise yet tunable lasers are a revolutionary tool in precision spectroscopy, displacement measurements at the standard quantum limit, and the development of advanced optical atomic clocks. Further applications include lidar, coherent communications, frequency synthesis, and precision sensors of strain, motion, and temperature. While all applications benefit from lower frequency noise, many also require a laser that is robust and compact. Here, we introduce a dual-microcavity laser that leverages one chip-integrable silica microresonator to generate tunable 1550 nm laser light via stimulated Brillouin scattering (SBS) and a second microresonator for frequency stabilization of the SBS light. This configuration reduces the fractional frequency noise to 7.8 x 10(-14) 1/root Hz at 10 Hz offset, which is a new regime of noise performance for a microresonator-based laser. Our system also features terahertz tunability and the potential for chip-level integration. We demonstrate the utility of our dual-microcavity laser by performing spectral linewidth measurements with hertz-level resolution. (C) 2015 Optical Society of America.-
dc.languageEnglish-
dc.publisherOPTICAL SOC AMER-
dc.titleDual-microcavity narrow-linewidth Brillouin laser-
dc.typeArticle-
dc.identifier.wosid000354867000006-
dc.identifier.scopusid2-s2.0-84930211471-
dc.type.rimsART-
dc.citation.volume2-
dc.citation.issue3-
dc.citation.beginningpage225-
dc.citation.endingpage232-
dc.citation.publicationnameOPTICA-
dc.identifier.doi10.1364/OPTICA.2.000225-
dc.contributor.localauthorLee, Hansuek-
dc.contributor.nonIdAuthorLoh, William-
dc.contributor.nonIdAuthorGreen, Adam A. S.-
dc.contributor.nonIdAuthorBaynes, Fred N.-
dc.contributor.nonIdAuthorCole, Daniel C.-
dc.contributor.nonIdAuthorQuinlan, Franklyn J.-
dc.contributor.nonIdAuthorVahala, Kerry J.-
dc.contributor.nonIdAuthorPapp, Scott B.-
dc.contributor.nonIdAuthorDiddams, Scott A.-
dc.description.isOpenAccessN-
dc.type.journalArticleArticle-
dc.subject.keywordPlusGALLERY-MODE RESONATORS-
dc.subject.keywordPlusFREQUENCY STABILIZATION-
dc.subject.keywordPlusSEMICONDUCTOR-LASER-
dc.subject.keywordPlusOPTICAL CAVITY-
dc.subject.keywordPlusSILICON-
dc.subject.keywordPlusCHIP-
dc.subject.keywordPlusMICRORESONATOR-
dc.subject.keywordPlusGENERATION-
dc.subject.keywordPlusREFERENCES-
dc.subject.keywordPlusDIVISION-
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