Area of research
Electronic, Optical and Magnetic Materials · Materials Chemistry
Research interest
Research interests include Iron-based superconductors research, ZnO doping and properties, Ammonia Synthesis and Nitrogen Reduction, and Thin-Film Transistor Technologies.
Ammonia Decomposition Promoted by the Formation of Ternary Transition Metal Nitride Intermediates: Ni (Co)-Loaded BaSi<sub>2</sub>.
Electrides: Emerging electronic materials for catalysis.
Exploring Ortho-Para Hydrogen Conversion Catalysts Based on Surface Electric Field Gradient.
Inorganic electrides: Concepts, design principles, structures, properties, and catalytic applications
Sustainable room-temperature, water-driven conversion of CO
<sub>2</sub>
to graphitic carbon quantum dots on electride electrodes
Relationship between local hydride ion dynamics and ionic conductivity in
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Ordered single active sites for cascade hydrogenation and hydroformylation reactions
Oxygen Defects and Instability in Very Thin a‐IGZO TFTs
<scp>LAX</scp> phases: A family of novel stable layered materials, informatics‐based discovery
Anion vacancies activate N<sub>2</sub> to ammonia on Ba-Si orthosilicate oxynitride-hydride.
Nanoscale Origin of Strong Charge Carrier Scattering at Grain Boundaries in Orthorhombic SnSe Semiconductor Thin Films
CO<sub>2</sub> Conversion to Methanol by Hydrogen Species on n-Type Oxide Semiconductors.
Tuning the Electronic Structure of BaAl<sub>2</sub>O<sub>4–<i>x</i></sub>A<sub><i>y</i></sub> with Anion Substitution for Cobalt-Loaded Ammonia Synthesis Catalysts
Origin of Room Temperature Methanol Synthesis over Hcp-PdMo.
Machine learning-assisted Ru-N bond regulation for ammonia synthesis.
Enhanced Hydrogen Release from Hydrogen Boride Nanosheets via Carbon Doping
Valence Band Modulation Using Cationic Filled p Orbitals toward p-Type Conduction
Mobility Overestimation in Thin-Film Transistors: Effects of Device Geometry and Fringe Currents.
Mechanochemical preparation of perovskite-type oxyhydrides BaLnO<sub>2</sub>H (Ln = Tb-Lu) and their catalytic activity for ammonia synthesis.
Precise Vacancy Fitting of Horizontal Dinitrogen for Ammonia Synthesis.
Ammonia Decomposition Catalyzed by Co Nanoparticles Encapsulated in Rare Earth Oxide.
Half‐Calcium Substitution of the CaB
<sub>6</sub>
Surface with Hydrogen: Synthesis, Structural Characterization, and Electronic Structure
Origin of Room Temperature Methanol Synthesis over Hcp‐PdMo
Half‐Calcium Substitution of the CaB
<sub>6</sub>
Surface with Hydrogen: Synthesis, Structural Characterization, and Electronic Structure
Erratum: “Ambipolarity of diluted hydrogen in wide-gap oxides revealed by Muon study” [J. Appl. Phys. 132, 105701 (2022)]
Precious-Metal-Free Mo-MXene Catalyst Enabling Facile Ammonia Synthesis Via Dual Sites Bridged by H-Spillover.
CN<sub>2</sub><sup>2–</sup> Vacancies Enhance Ammonia Synthesis over Air-Durable Alkaline Earth Metal Cyanamide-Supported Cobalt Catalysts
Simultaneous Realization of Single-Crystal-Like Electron Transport and Strong Phonon Scattering in Polycrystalline SrTiO<sub>3–<i>x</i></sub>H<sub><i>x</i></sub>
Effects of nitrogen vacancy sites of oxynitride support on the catalytic activity for ammonia decomposition
Wide-Gap p-Type Layered Oxychalcogenides AE<sub>2</sub>CuInO<sub>3</sub>Ch (AE: Alkaline Earth; Ch: Chalcogen): Unusually Low Residual Carrier Concentration and Green-to-Red Emission