Photostability of blue phosphorescent films on plasmonic surfaces

Author:

Carter Catrice M.1ORCID,Gwynne Kelsey M.1ORCID,Leil Rahma1ORCID,Shen Zeqing2ORCID,Cheng Zhongkai2ORCID,Javed Nasir1ORCID,Kumah Cindy1,Bethur Eshana1,Santa Dylan1ORCID,Wang Chenguang D.3ORCID,O’Carroll Deirdre M.12ORCID

Affiliation:

1. Department of Materials Science and Engineering, Rutgers University 1 , 607 Taylor Rd., Piscataway, New Jersey 08854, USA

2. Department of Chemistry and Chemical Biology, Rutgers University 2 , 610 Taylor Rd., Piscataway, New Jersey 08854, USA

3. Trinity College Dublin, School of Physics, College Green 3 , Dublin 2, Ireland

Abstract

Organometallic phosphors are an important class of emissive materials used in high-efficiency organic light-emitting devices. However, problems of low photostability arise for blue-emitting phosphors due to chemical and environmental degradation and triplet quenching processes. Various approaches have been developed to improve the photostability of such phosphors, including the design of new organometallic molecules and control of host-dopant composition in thin films. Here, we demonstrate a different approach for improving the photostability of blue organometallic phosphors that uses localized surface plasmon resonances to increase the triplet recombination rate. The increased recombination rate improves the photostability of the phosphor due to the reduction in triplet quenching pathways. We show that the lifetime of phosphorescence is decreased significantly by nanoparticle-based plasmonic surfaces, which improves the photostability of the blue organometallic phosphor by up to a factor of 3.6. Other plasmonic surfaces are also tested and exhibit less significant photostability improvements due to a reduced spectral overlap of the plasmonic modes with the emitter and lower mode confinement. The use of plasmonic surfaces to improve phosphor photostability at blue wavelengths is distinct from other approaches because it involves modification to the local electromagnetic environment of the phosphor rather than modifications to the phosphor molecular structure or the emitting material composition.

Funder

National Science Foundation

Science Foundation Ireland

U.S. Department of Energy

United States Agency for International Development

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

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