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LJ
Verified CAS / Academic Author2 Decoded Studies

Prof. LUO Jiajun

Huazhong University of Science and Technology

Research Publications & English Decoded Briefs

Showing 2 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3967-x

Phase Distribution Control in Thermally Evaporated Perovskite Films for Speckle-Free Laser Imaging

Metal-halide perovskites exhibit exceptional optical gain, narrow emission linewidths, and high emission efficiency, positioning them as promising candidates for next-generation lasers. Thermal evaporation, a mature semiconductor fabrication technique, offers scalability, yet monitoring phase distribution during deposition remains challenging. This study systematically investigates and regulates thermally evaporated FAxCs0.8PbBr3 perovskite films by tuning formamidinium (FA) content to optimize phase distribution. At intermediate FA content, films achieve a balanced distribution of n=2 to n=5 quantum-well phases, facilitating ultrafast carrier transfer (<0.31 ps) and suppressing nonradiative recombination. FA+ actively incorporates as an A-site cation, promoting ordered crystallization and reducing defect densities. The optimized films exhibit a net modal gain of 1041 cm−1 and a gain lifetime of 129 ps. Benefiting from efficient internal scattering, the threshold for cavity-free random lasing is reduced to below 5 μJ/cm2 at room temperature. The low spatial coherence of random lasing enables speckle-free imaging with a speckle contrast as low as 0.011 and improved contrast-to-noise ratios across all spatial frequencies. This work provides a scalable strategy for perovskite composition-phase engineering, advancing speckle-free laser imaging systems compatible with semiconductor-grade, large-area manufacturing.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3512-2

Chloride-Passivated Lead Sulfide Thin Film for High-Performance Extended Short-Wavelength Infrared Photodiode

Liquid-phase chemically deposited lead sulfide (PbS) thin films are a cost-effective platform for extended short-wavelength infrared (eSWIR) detection, yet their performance is constrained by high densities of sulfur vacancies and oxygen-in-sulfur defects formed during deposition. This work introduces chloride ions as an in-situ additive during chemical bath deposition to passivate these defects. The similar ionic radius of Cl⁻ (176 pm) to S²⁻ (179 pm) and its coordination with Pb²⁺ enable substitutional incorporation without significant lattice distortion. The passivated films exhibit a near-unity Pb/S atomic ratio, a photoluminescence full-width at half-maximum of 75 meV, and a carrier lifetime increase exceeding 20-fold. Homojunction photodiodes fabricated from these films demonstrate a dark current density of 3.1 μA/cm² at 0 V, a responsivity of 0.79 A/W at 2.5 μm, a specific detectivity of 8.79 × 10⁹ Jones, and a response time of 19.6 μs. The resistance-area product (R₀A) reaches 8.78 Ω cm² at 300 K and 6.16 kΩ cm² at 80 K. Activation energy analysis reveals trap-assisted tunneling as the dominant dark current mechanism at higher reverse biases, attributed to grain boundaries. These results represent among the best reported performance for PbS bulk thin-film photodiodes and offer a scalable route to high-performance eSWIR sensors.