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Circularly Polarized 1540 nm Short-Wave Infrared Electroluminescence from Er-Based Halide LEDs with 3.06% Record
Ruixin Song1, Donglei Zhou1, Renhuan Song1
1State Key Laboratory of Integrated Optoelectronics, College of Electronic Science and Engineering, Jilin University, Changchun, P. R. China.
Abstract:
Er3+-doped 1540 nm light-emitting diodes (LEDs) are critical components in optical communications C-band, non-trunk communication, bioimaging, and sensing. However, integrating high luminous efficiency with tailored circularly polarized luminescence (CPL) in such LEDs remains a critical challenge. Here, we demonstrate efficient 1540 nm short-wave infrared (SWIR) electroluminescence with distinct CPL in Cs3ErCl6 nanocrystals (NCs)-based LEDs via a synergistic strategy of Sb3+/Y3+ co-doping and camphor ligand modification. Y3+ doping modulates lattice symmetry, inducing Stark splitting of the Er3+ energy level and enhancing luminescence intensity. Sb3+ introduction triggers efficient self-trapped excitons emission at 530 nm, whose energy levels match Er3+ states to boost energy transfer efficiency. Subsequently, camphor ligand exchange passivates Er3+-related defects, increasing the 1540 nm photoluminescence quantum yield to 35.7% and endowing NCs with CPL (asymmetry factor: -3.67 × 10-2) via camphor's chiral structure. SWIR LEDs based on camphor-modified Cs3Er0.7Y0.3Cl6: Sb3+ NCs exhibit a record-high external quantum efficiency of 3.06% at 1540 nm, and first, demonstrate electrically-driven circularly polarized 1540 nm emission with asymmetry factor of -3.08 × 10-2. This work presents a synergistic doping-ligand strategy for Er-based halide optoelectronics, offering a versatile platform to develop high-performance long-wavelength devices with integrated efficient emission and tailored polarization, crucial for advancing next-generation optical communication and bioimaging.
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