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DQ
Verified CAS / Academic Author2 Decoded Studies

Prof. Di Qian

School of Physics and Materials Science, Guangzhou University

Research Publications & English Decoded Briefs

Showing 2 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3777-0

Mechanically and Chemically Recyclable Polyurethane-Based Optically Clear Adhesive with On-Demand Adhesion/Deadhesion

Optically clear adhesives (OCAs) are critical for next-generation optoelectronic systems, yet their end-of-life management remains a sustainability challenge. Here, we report a debondable and robust polyurethane (PU)-based OCA that integrates both mechanical and chemical recyclability. The PU-based OCA exhibits high optical transparency (>90% transmittance from visible to near-infrared), strong adhesion to glass and polymeric substrates (bonding strength up to 5.0 MPa), and thermally sensitive H-bonding interactions that enable on-demand deadhesion at elevated temperatures. This capability facilitates non-destructive detachment of functional assemblies, promoting component reuse and material recycling. The adhesive demonstrates excellent mechanical properties, including ductility and strength, and outperforms several commercial optical adhesives in key performance metrics. Its straightforward synthesis and industrial scalability make it a promising solution for advancing circular economy principles in optoelectronic device manufacturing. The work addresses critical bottlenecks in balancing mechanical performance, adhesion/detachment, and recyclability, offering a transformative approach to sustainable advanced manufacturing.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3469-7

Inducing B-site distortion in Gd3Sc1.5In0.5Ga3O12 garnet to accommodate Cr3+ ions: achieving high quantum efficiency and thermally stable broadband NIR phosphors for NIR spectroscopy applications

Broadband near-infrared (NIR) phosphors are essential for portable NIR light sources, yet achieving high quantum efficiency (QE) and thermal stability simultaneously remains a persistent challenge. This study reports a Cr3+-doped garnet phosphor, Gd3Sc1.5In0.5Ga3O12:Cr3+, engineered via B-site cation substitution to induce local structural distortion. The substitution of Sc3+ by In3+ reduces the symmetry of the six-coordinate polyhedra, lifting the parity selection rule and enhancing the oscillator strength of Cr3+ 3d-3d transitions. Under 460 nm blue excitation, the phosphor exhibits broadband NIR emission centered at 775 nm with a full width at half maximum (FWHM) exceeding 135 nm. The optimized material achieves an internal quantum efficiency (IQE) of 98.29% and maintains 85.50% of its room-temperature emission intensity at 423 K. A prototype NIR phosphor-converted LED (pc-LED) fabricated with this phosphor and a 460 nm blue chip delivers a power conversion efficiency (PCE) of 19.75% at 30 mA and an NIR output power of 276.01 mW at 1200 mA. These results demonstrate that cation substitution strategies can effectively balance QE and thermal stability, offering a viable route for high-performance NIR pc-LEDs in miniaturized spectrometers, night vision, and non-invasive imaging.