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dc.contributor.authorBurton, S. P.
dc.contributor.authorHostetler, C. A.
dc.contributor.authorCook, A. L.
dc.contributor.authorHair, J. W.
dc.contributor.authorSeaman, S. T.
dc.contributor.authorScola, S.
dc.contributor.authorHarper, D. B.
dc.contributor.authorSmith, J. A.
dc.contributor.authorFenn, M. A.
dc.contributor.authorFerrare, Richard A.
dc.contributor.authorSaide, P. E.
dc.contributor.authorChemyakin, E. V.
dc.contributor.authorMüller, D.
dc.date.accessioned2020-10-22T11:15:02Z
dc.date.available2020-10-22T11:15:02Z
dc.date.issued2018-07-17
dc.identifier.citationBurton , S P , Hostetler , C A , Cook , A L , Hair , J W , Seaman , S T , Scola , S , Harper , D B , Smith , J A , Fenn , M A , Ferrare , R A , Saide , P E , Chemyakin , E V & Müller , D 2018 , ' Calibration of a high spectral resolution lidar using a michelson interferometer, with data examples from ORACLES ' , Applied Optics , vol. 57 , no. 21 , pp. 6061-6075 . https://doi.org/10.1364/AO.57.006061
dc.identifier.issn1559-128X
dc.identifier.otherORCID: /0000-0002-0203-7654/work/68611710
dc.identifier.urihttp://hdl.handle.net/2299/23306
dc.description© 2018 Optical Society of America]. One print or electronic copy may be made for personal use only. Systematic reproduction and distribution, duplication of any material in this paper for a fee or for commercial purposes, or modifications of the content of this paper are prohibited.
dc.description.abstractThe NASA Langley airborne second-generation High Spectral Resolution Lidar (HSRL-2) uses a density-tuned field-widened Michelson interferometer to implement the HSRL technique at 355 nm. The Michelson interferometer optically separates the received backscattered light between two channels, one of which is dominated by molecular backscattering, while the other contains most of the light backscattered by particles. This interferometer achieves high and stable contrast ratio, defined as the ratio of particulate backscatter signal received by the two channels. We show that a high and stable contrast ratio is critical for precise and accurate backscatter and extinction retrievals. Here, we present retrieval equations that take into account the incomplete separation of particulate and molecular backscatter in the measurement channels. We also show how the accuracy of the contrast ratio assessment propagates to error in the optical properties. For both backscattering and extinction, larger errors are produced by underestimates of the contrast ratio (compared to overestimates), more extreme aerosol loading, and—most critically—smaller true contrast ratios. We show example results from HSRL-2 aboard the NASA ER-2 aircraft from the 2016 ORACLES field campaign in the southeast Atlantic, off the coast of Africa, during the biomass burning season. We include a case study where smoke aerosol in two adjacent altitude layers showed opposite differences in extinction- and backscatter-related Ångström exponents and a reversal of the lidar ratio spectral dependence, signatures which are shown to be consistent with a relatively modest difference in smoke particle size.en
dc.format.extent15
dc.format.extent2231297
dc.language.isoeng
dc.relation.ispartofApplied Optics
dc.subjectAtomic and Molecular Physics, and Optics
dc.subjectEngineering (miscellaneous)
dc.titleCalibration of a high spectral resolution lidar using a michelson interferometer, with data examples from ORACLESen
dc.contributor.institutionCentre for Atmospheric and Climate Physics Research
dc.contributor.institutionSchool of Physics, Astronomy and Mathematics
dc.contributor.institutionSPECS Deans Group
dc.description.statusPeer reviewed
dc.identifier.urlhttp://www.scopus.com/inward/record.url?scp=85050192524&partnerID=8YFLogxK
rioxxterms.versionofrecord10.1364/AO.57.006061
rioxxterms.typeJournal Article/Review
herts.preservation.rarelyaccessedtrue


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