Critical Roles of Ultrafast Energy Funnelling and Ultrafast Singlet‐Triplet Annihilation in Quasi‐2D Perovskite Optical Gain Mechanisms
Abstract
Abstract Quasi‐2D (Q2D) perovskite possess considerable potential for light emission and amplification technologies. Recently, mixed films containing Q2D perovskite grains with varying layer thicknesses have shown great promise as carrier concentrators, effectively mitigating trap‐mediated recombination. In this strategy, photo‐excitations are rapidly funnelled down an energy gradient to the thickest grains, leading to amplified spontaneous emission (ASE). However, the quantum‐confined Q2D slabs also stabilize the formation of unwanted triplet excitons, resulting in parasitic quenching of emissive singlet states. Here, a novel ultrafast photoluminescence spectroscopy is used to study photoexcitation dynamics in mixed‐layer Q2D perovskites. By analysing spectra with high temporal and energy resolution, this is found that sub‐picosecond energy transfer to ASE sites is accompanied by excitation losses due to triplet formation on grains with small and intermediate thicknesses. Further accumulation of triplets creates a bottleneck in the energy cascade, effectively quenching incoming singlet excitons. This ultrafast annihilation within 200 femtosecond outpaces energy transfer to ASE sites, preventing the build‐up of population inversion. This study highlights the significance of investigating photoexcitation dynamics on ultrafast timescales, encompassing lasing dynamics, energy transfer, and singlet‐triplet annihilation, to gain crucial insights into the photophysics of the optical gain process in Q2D perovskites.
Article Details
Authors (14)
Isabella Wagner
MacDiarmid Institute for Advanced Materials and Nanotechnology Wellington 6012 New Zealand
Wouter T.M. Van Gompel
Hybrid Materials Design (HyMaD) Institute for Materials Research (IMO) Hasselt University Hasselt 3500 Belgium
Robin Erkens
Hybrid Materials Design (HyMaD) Institute for Materials Research (IMO) Hasselt University Hasselt 3500 Belgium
Bart Ruttens
Associated Laboratory IMOMEC Imec Wetenschapspark 1 Diepenbeek 3590 Belgium
Jan D'Haen
Associated Laboratory IMOMEC Imec Wetenschapspark 1 Diepenbeek 3590 Belgium
Laurence Lutsen
Hasselt University, Institute for Materials Research (imo-imomec), Design & Synthesis of Organic Semiconductors (DSOS), Martelarenlaan 42, B-3500 Hasselt, Belgium
Dirk Vanderzande
Hasselt University, Institute for Materials Research (imo-imomec), Hybrid Materials Design (HyMaD), Martelarenlaan 42, B-3500 Hasselt, Belgium
Chern Chuang
Department of Chemistry & Biochemistry
Sheng Hsiung Chang
Department of Physics Chung Yuan Christian University Taoyuan 320314 Taiwan
Paul A. Hume
School of Chemical and Physical Sciences
Michael B. Price
School of Chemistry
Pieter Geiregat
Physics and Chemistry of Nanostructures, Department of Chemistry, Ghent University, Krijgslaan 281-S3, 9000 Ghent, Belgium
Justin M. Hodgkiss
Center for Integrated Data-Material Sciences (iDM), MacDiarmid Institute for Advanced Materials and Nanotechnology 2 , Wellington,
Kai Chen