High-temperature superfluorescence in methyl ammonium lead iodide
Light–matter interactions can create and manipulate collective many-body phases in solids 1 – 3 , which are promising for the realization of emerging quantum applications. However, in most cases, these collective quantum states are fragile, with a short decoherence and dephasing time, limiting their...
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Veröffentlicht in: | Nature photonics 2021-09, Vol.15 (9), p.676-680 |
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Sprache: | eng |
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Zusammenfassung: | Light–matter interactions can create and manipulate collective many-body phases in solids
1
–
3
, which are promising for the realization of emerging quantum applications. However, in most cases, these collective quantum states are fragile, with a short decoherence and dephasing time, limiting their existence to precision tailored structures under delicate conditions such as cryogenic temperatures and/or high magnetic fields. In this work, we discovered that the archetypal hybrid perovskite, MAPbI
3
thin film, exhibits such a collective coherent quantum many-body phase, namely superfluorescence, at 78 K and above. Pulsed laser excitation first creates a population of high-energy electron–hole pairs, which quickly relax to lower energy domains and then develop a macroscopic quantum coherence through spontaneous synchronization. The excitation fluence dependence of the spectroscopic features and the population kinetics in such films unambiguously confirm all the well-known characteristics of superfluorescence. These results show that the creation and manipulation of collective coherent states in hybrid perovskites can be used as the basic building blocks for quantum applications
4
,
5
.
A collective coherent quantum many-body phase, namely superfluorescence, is observed in CH
3
NH
3
PbI
3
at 78 K. The excitation fluence dependence of the spectroscopic features and the population kinetics confirm all its well-known characteristics. |
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ISSN: | 1749-4885 1749-4893 |
DOI: | 10.1038/s41566-021-00830-x |