Materials Horizons · 2024 · 20 citations · 44 references
Spin-LEDs have been a central topic in semiconductor spintronics research and represent a promising avenue for advanced optoelectronic devices and applications. The future advancements of spin-LEDs will undoubtedly hinge on the generation and manipulation of spin-polarized population at room temperature. In this research, we elucidate the development of room-temperature spin-LEDs using quasi-2D perovskites, based on the chiral-induced spin selectivity (CISS) effect. During the carrier transfer from the chiral <i>n</i>2 phase to the randomly oriented high-<i>n</i> phase caused by the bandgap gradient distribution, CISS works to generate non-equilibrium spin population, leading to room-temperature spin-polarized fluorescence. A spin-polarization of ∼93% is observed for the films. Finally, we realize spin-LEDs at room temperature, exhibiting a |<i>g</i><sub>CP-EL</sub>| value of 0.05 and an EQE of 3.8%. This work highlights the potential of integrating dual ligands to optimize the phase distribution and crystalline orientation in quasi-2D films to achieve efficient CISS for spin-LED applications.
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Injection and detection of a spin-polarized current in a light-emitting diode
R. Fiederling, M. Keim, G. Reuscher et al. · Nature · 1999 · 1.8K citations
Chiral-induced spin selectivity enables a room-temperature spin light-emitting diode
Young‐Hoon Kim, Yaxin Zhai, Haipeng Lu et al. · Science · 2021 · 689 citations · Full text
Chiral-Induced Spin Selectivity Effect
Ron Naaman, David H. Waldeck · The Journal of Physical Chemistry Letters · 2012 · 654 citations
Spintronics, Magnetism, Spin Dynamic +14