Rashba Spin Splitting Limiting the Application of 2D Halide Perovskites for UV-Emitting Devices.
Eliane A MoraisNaidel A M S CaturelloMaykon A LemesHenrique FerreiraFabio Furlan FerreiraJose J S AcuñaSergio BrochsztainGustavo Martini DalpianJose Antonio SouzaPublished in: ACS applied materials & interfaces (2024)
Layered lead halide perovskites have attracted much attention as promising materials for a new generation of optoelectronic devices. To make progress in applications, a full understanding of the basic properties is essential. Here, we study 2D-layered (BA) 2 PbX 4 by using different halide anions (X = I, Br, and Cl) along with quantum confinement. The obtained cell parameter evolution, supported by experimental measurements and theoretical calculations, indicates strong lattice distortions of the metal halide octahedra, breaking the local inversion symmetry in (BA) 2 PbCl 4 , which strongly correlates with a pronounced Rashba spin-splitting effect. Optical measurements reveal strong photoluminescence quenching and a drastic reduction in the PL quantum yield in this larger band gap compound. We suggest that these optical results are closely related to the appearance of the Rashba effect due to the existence of a local electric dipole. The results obtained in ab initio calculations showed that the (BA) 2 PbCl 4 possesses electrical polarization of 0.13 μC/cm 2 and spin-splitting energy of about 40 meV. Our work establishes that local octahedra distortions induce Rashba spin splitting, which explains why obtaining UV-emitting materials with high PLQY is a big challenge.
Keyphrases
- density functional theory
- molecular dynamics
- energy transfer
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- transition metal
- room temperature
- quantum dots
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- perovskite solar cells
- single cell
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- monte carlo
- high speed
- cell therapy
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- fluorescent probe
- reduced graphene oxide
- machine learning
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- magnetic resonance
- dna methylation
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