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Verified CAS / Academic Author2 Decoded Studies

Prof. Yihua Hu

School of Physics and Materials Science, Guangzhou University

Research Publications & English Decoded Briefs

Showing 2 publications
Journal of Environmental Engineering Technology2026DOI: 10.13205/j.hjgc.202606007

Performance and Mechanism of Cobalt-Aluminum Spinel Catalyzed Oxidation of Nitric Oxide

Cobalt-aluminum spinel metal oxides derived from hydrotalcite were synthesized via hydrothermal, coprecipitation, and sol-gel methods, and their catalytic performance for NO oxidation was systematically evaluated. Characterization by X-ray photoelectron spectroscopy (XPS), O2 temperature-programmed desorption (O2-TPD), H2 temperature-programmed reduction (H2-TPR), and Raman spectroscopy revealed that the synthesis method significantly influences the surface Co2+/Co3+ ratio, which in turn modulates the formation of surface oxygen vacancies. The hydrothermally synthesized catalyst (CoAlO-H) exhibited the highest density of surface oxygen vacancies, leading to enhanced adsorption and activation of gaseous oxygen and superior NO oxidation activity compared to coprecipitation (CoAlO-C) and sol-gel (CoAlO-S) counterparts. Mechanistic studies using NO-TPD, NO+O2-TPD, and in situ diffuse reflectance infrared Fourier transform spectroscopy (in situ DRIFTS) identified nitrates as key intermediates. Notably, CoAlO-C and CoAlO-S followed the Langmuir-Hinshelwood (L-H) mechanism, whereas CoAlO-H operated via both L-H and Mars-van Krevelen (MvK) mechanisms. The exceptional performance of CoAlO-H is attributed to its abundant surface oxygen vacancies, high surface oxygen mobility, and low decomposition temperature of reaction intermediates. These findings provide a rational basis for designing efficient non-precious metal catalysts for NO oxidation in diesel exhaust aftertreatment.

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.