New red phosphor ceramic K2SiF6:Mn4+

dc.contributor.author Osborne, R. A.
dc.contributor.author Cherepy, N. J.
dc.contributor.author Seeley, Z. M.
dc.contributor.author Payne, S. A.
dc.contributor.author Drobshoff, A. D.
dc.contributor.author Srivastava, A. M.
dc.contributor.author Beers, W. W.
dc.contributor.author Cohen, W. W.
dc.contributor.author Schlagel, Deborah
dc.contributor.department Ames National Laboratory
dc.contributor.department Ames Laboratory
dc.date 2020-10-24T04:54:49.000
dc.date.accessioned 2021-02-24T20:25:17Z
dc.date.available 2021-02-24T20:25:17Z
dc.date.embargo 2021-07-07
dc.date.issued 2020-09-01
dc.description.abstract <p>A new transparent ceramic phosphor for use in LED lighting has been fabricated. The previously reported and optimized narrow-emitting red phosphor, K2SiF6:Mn4+ (KSF), has been consolidated into a transparent ceramic phosphor for the first time, accomplished via hot-pressing the feedstock phosphor powder in a die under vacuum. KSF ceramics were fabricated with varying doping concentrations of Mn4+ and their properties studied. The absorption and emission spectra of the ceramics were identical to the feedstock phosphor powders and are ideal for LED lighting with strong absorption at 450 nm and narrow emission around 630 nm. The absorbance of the ceramics was directly proportional to the doping concentration. The ceramics were excited at various blue light fluxes and their emission intensities measured to study the effect of Mn4+ concentration on intensity-driven “droop” in the emission output. The ceramics with a lower Mn4+ doping were more efficient under higher light fluxes due to a decrease in Auger upconversion losses. KSF ceramics can allow a much longer path length of the diode light through the phosphor, as compared to phosphor-in-silicone, enabling the use of low optical absorption and the associated reduced activator concentration. The ceramics are measured to have a thermal conductivity of ~1.0 W/m-K, higher than that of phosphor-in-silicone or phosphor-in-glass. Several of these properties make KSF ceramics potentially desirable for use in white light LEDs. Greater thermal conductivity helps with heat dissipation, the lower surface area of the ceramic compared to the powder minimizes the environmental vulnerability of KSF, and the ability to lower the Mn4+ concentration reduces Auger recombination losses and mitigates the temperature rise, particularly at higher light flux.</p>
dc.identifier archive/lib.dr.iastate.edu/ameslab_manuscripts/659/
dc.identifier.articleid 1666
dc.identifier.contextkey 19958485
dc.identifier.s3bucket isulib-bepress-aws-west
dc.identifier.submissionpath ameslab_manuscripts/659
dc.identifier.uri https://dr.lib.iastate.edu/handle/20.500.12876/93102
dc.language.iso en
dc.relation.ispartofseries IS-J 10221
dc.source.bitstream archive/lib.dr.iastate.edu/ameslab_manuscripts/659/IS_J_10221.pdf|||Sat Jan 15 01:24:52 UTC 2022
dc.source.uri 10.1016/j.optmat.2020.110140
dc.subject.disciplines Ceramic Materials
dc.subject.disciplines Engineering Physics
dc.subject.keywords Phosphor ceramic
dc.subject.keywords Transparent ceramic
dc.subject.keywords Red phosphor
dc.subject.keywords K2SiF6
dc.subject.keywords LED phosphor
dc.subject.keywords Droop
dc.title New red phosphor ceramic K2SiF6:Mn4+
dc.type article
dc.type.genre article
dspace.entity.type Publication
relation.isAuthorOfPublication 220ce8a4-546b-4118-8d44-911799a0ffa1
relation.isOrgUnitOfPublication 25913818-6714-4be5-89a6-f70c8facdf7e
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