Kids Library Home

Welcome to the Kids' Library!

Search for books, movies, music, magazines, and more.

     
Available items only
Print Material
Author Lin, YunHui, author.

Title Interlayer triplet energy transfer in Dion-Jacobson 2d perovskites containing naphthalene diammonium cations / YunHui (Lisa) Lin, Justin C. Johnson.

Publication Info. Golden, CO : National Renewable Energy Laboratory, 2021.

Copies

Description 1 online resource (20 pages) : illustrations (chiefly color).
text txt rdacontent
computer c rdamedia
online resource cr rdacarrier
Series NREL/PR ; 5900-81033
NREL/PR ; 5900-81033.
Note Slideshow presentation.
"SPIE Optics + Photonics Conference Aug. 1-5, 2021."
"Symposium: Physical Chemistry of Semiconductor Materials and Interfaces XX."
Funding DE-AC36-08GO28308
Note Description based on online resource; title from PDF title page (NREL, viewed May 4, 2022).
Summary The ability to tune the heterojunction energy level alignment in layered 2D perovskites is well documented, with both early works and more recent studies reporting interfacial triplet energy transfer in certain pairings of lead halide with small conjugated organic spacer cations. Such 2D perovskites are promising systems for sensitized molecular phosphorescence, which has varied applications in optoelectronics, solar energy conversion, and more. However, even for a given organic cation core, variations in the cation structure (e.g. location of the ammonium substituent, length of the alkyl linker, and valency of the cation) can dramatically alter the organic layer morphology and electronic coupling between the inorganic and organic layers. While interlayer triplet energy transfer has been studied in Ruddlesden-Popper 2D perovskites containing monovalent naphthalene cations, the photophysical properties of their Dion-Jacobson analogue, formed using divalent naphthalene cations, have not been reported. In this study, we examine interlayer energy transfer in a series of mixed-halide 2D perovskites formed by divalent naphthalene cations. We find that the sensitized phosphorescence in these compounds is dominated by naphthalene triplet excimer emission, but when the lead halide exciton level is tuned near resonance with the triplet level of naphthalene, emission from the naphthalene triplet monomer competes with triplet excimer formation. Interlayer energy transfer in these compounds is further supported by ultrafast transient absorption spectroscopy. Ultimately, the ability to gain control over interlayer interactions in layered 2D perovskites through cation design will help uncover new functions and applications for these materials.
Subject Perovskite materials.
Naphthalene.
Crystals -- Structure.
Chemical structure.
Naphtalène.
Cristaux -- Structure.
Structure chimique.
Chemical structure
Crystals -- Structure
Naphthalene
Perovskite materials
Indexed Term 2D
excimer
perovskite
photoluminescence
solar-photochemistry
triplet energy transfer
triplet sensitization
Added Author Johnson, Justin C., author.
National Renewable Energy Laboratory (U.S.), issuing body.
Standard No. 1823454 OSTI ID
0000-0002-0817-8757
0000-0002-8874-6637
Gpo Item No. 0430-P-09 (online)
Sudoc No. E 9.22:NREL/PR-5900-81033

 
    
Available items only