Tailor-made nanostructures bridging chaos and order for highly efficient white organic light-emitting diodes

dc.bibliographicCitation.firstPage2972eng
dc.bibliographicCitation.issue1eng
dc.bibliographicCitation.journalTitleNature Communicationseng
dc.bibliographicCitation.lastPage720eng
dc.bibliographicCitation.volume10eng
dc.contributor.authorLi, Y.
dc.contributor.authorKovačič, M.
dc.contributor.authorWestphalen, J.
dc.contributor.authorOswald, S.
dc.contributor.authorMa, Z.
dc.contributor.authorHänisch, C.
dc.contributor.authorWill, P.-A.
dc.contributor.authorJiang, L.
dc.contributor.authorJunghaehnel, M.
dc.contributor.authorScholz, R.
dc.contributor.authorLenk, S.
dc.contributor.authorReineke, S.
dc.date.accessioned2020-07-18T06:12:39Z
dc.date.available2020-07-18T06:12:39Z
dc.date.issued2019
dc.description.abstractOrganic light-emitting diodes (OLEDs) suffer from notorious light trapping, resulting in only moderate external quantum efficiencies. Here, we report a facile, scalable, lithography-free method to generate controllable nanostructures with directional randomness and dimensional order, significantly boosting the efficiency of white OLEDs. Mechanical deformations form on the surface of poly(dimethylsiloxane) in response to compressive stress release, initialized by reactive ions etching with periodicity and depth distribution ranging from dozens of nanometers to micrometers. We demonstrate the possibility of independently tuning the average depth and the dominant periodicity. Integrating these nanostructures into a two-unit tandem white organic light-emitting diode, a maximum external quantum efficiency of 76.3% and a luminous efficacy of 95.7 lm W−1 are achieved with extracted substrate modes. The enhancement factor of 1.53 ± 0.12 at 10,000 cd m−2 is obtained. An optical model is built by considering the dipole orientation, emitting wavelength, and the dipole position on the sinusoidal nanotexture.eng
dc.description.fondsLeibniz_Fonds
dc.description.versionpublishedVersioneng
dc.identifier.urihttps://doi.org/10.34657/3622
dc.identifier.urihttps://oa.tib.eu/renate/handle/123456789/4993
dc.language.isoengeng
dc.publisherLondon : Nature Publishing Groupeng
dc.relation.doihttps://doi.org/10.1038/s41467-019-11032-z
dc.relation.issn2041-1723
dc.rights.licenseCC BY 4.0 Unportedeng
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/eng
dc.subject.ddc530eng
dc.subject.otherdimeticoneeng
dc.subject.othernanomaterialeng
dc.subject.othersilasticeng
dc.subject.otherefficiency measurementeng
dc.subject.otherelectrodeeng
dc.subject.othervertical distributioneng
dc.subject.otherwavelengtheng
dc.subject.otherArticleeng
dc.subject.otheratomic force microscopyeng
dc.subject.otherchemical bindingeng
dc.subject.otherelectrochemical analysiseng
dc.subject.otherenergy dispersive X ray spectroscopyeng
dc.subject.otherfinite element analysiseng
dc.subject.otherflow rateeng
dc.subject.otherFourier transformationeng
dc.subject.othergas floweng
dc.subject.otherimpedance spectroscopyeng
dc.subject.otherirradiationeng
dc.subject.otherlight intensityeng
dc.subject.othermathematical modeleng
dc.subject.othermeasurement repeatabilityeng
dc.subject.othermolecular imprintingeng
dc.subject.othernanofabricationeng
dc.subject.otheroptical rotationeng
dc.subject.otheropticseng
dc.subject.otherpattern recognitioneng
dc.subject.otherperiodicityeng
dc.subject.otherphotostimulationeng
dc.subject.otherreactive ion etchingeng
dc.subject.otherrefraction indexeng
dc.subject.otherscanning electron microscopyeng
dc.subject.otherspectroscopyeng
dc.subject.otherstimuluseng
dc.subject.otherstresseng
dc.subject.otherX ray diffractioneng
dc.subject.otherX ray photoemission spectroscopyeng
dc.titleTailor-made nanostructures bridging chaos and order for highly efficient white organic light-emitting diodeseng
dc.typeArticleeng
dc.typeTexteng
tib.accessRightsopenAccesseng
wgl.contributorIFWDeng
wgl.subjectPhysikeng
wgl.typeZeitschriftenartikeleng
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