Charge-Transfer Engineering in 0D/3D Rare-Earth Halide Heterostructures Enables Tunable and Efficient White
Songchao Bai1, Chao Li2, Gang Yang3
1College of Physics, Liaoning University, Shenyang110036, China.
None:
Lead-free rare-earth metal halides hold great promise for solid-state white-light LEDs, yet efficient and spectrally tunable white emission remains challenging. Herein, we adopt an in situ alloying strategy with Ag+ ions to design and synthesize a 0D/3D (Cs3LuCl6/Cs2AgLuCl6) rare-earth halide heterostructure doped with Bi3+ ions. The favorable type-I band alignment and built-in electric field drive efficient interfacial charge transfer, thereby significantly boosting radiative recombination. The heterostructure yields dual-peak self-trapped exciton emissions at 440 and 590 nm, with a photoluminescence quantum yield of up to 92.12%. By tuning the Bi3+ doping concentration, the correlated color temperature can be continuously tuned across the white-light region. The corresponding phosphor-converted white LEDs achieve a color rendering index exceeding 90, excellent thermal stability, and 90% luminance retention after 100 h of operation. These findings provide new insights into the design and fabrication of high-performance white light-emitting luminescent materials for solid-state lighting.
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