Area of research
Materials Chemistry · Oncology
Research interest
Research interests include Materials science, OLED, Quantum efficiency, Fluorescence, Intersystem crossing, and Luminescence.
π‐Extended Heli(aminoborane)s with Highly Bright Circularly Polarized Luminescence and Narrowband Emission
<sup>3</sup>MMLCT excited states of luminescent binuclear Pd<sup>II</sup> complexes: excited state inner-sphere electron-transfer reactions and application
Copper(I)-based metal-metal-to-ligand charge transfer excited state with halogen-atom transfer photo-reactivity and photocatalysis
Au(I)‐TADF Emitters for High Efficiency Full‐Color Vacuum‐Deposited OLEDs and TADF‐Sensitized Fluorescent OLEDs with Ultrahigh Brightness and Prolonged Operational Lifetime
Strongly Luminescent Tetradentate Palladium(II)‐TADF Emitters. Blue TADF And TADF‐Sensitized OLEDs with External Quantum Efficiencies Over 23%
Clathrin light chain A‐enriched small extracellular vesicles remodel microvascular niche to induce hepatocellular carcinoma metastasis
Clathrin light chain A facilitates small extracellular vesicle uptake to promote hepatocellular carcinoma progression
Highly Robust Cu<sup>I</sup>‐TADF Emitters for Vacuum‐Deposited OLEDs with Luminance up to 222 200 cd m<sup>−2</sup> and Device Lifetimes (LT<sub>90</sub>) up to 1300 hours at an Initial Luminance of 1000 cd m<sup>−2</sup>
Gold(I) Multi‐Resonance Thermally Activated Delayed Fluorescent Emitters for Highly Efficient Ultrapure‐Green Organic Light‐Emitting Diodes
Exceedingly Stable Luminescent Dinuclear Pt(II) Complexes with Ditopic Formamidinate Bridging Ligands for High‐Performance Red and Deep‐Red OLEDs with LT<sub>97</sub> up to 2446 h at 1000 cd m<sup>−2</sup>
Stable Tetradentate Gold(III)‐TADF Emitters with Close to Unity Quantum Yield and Radiative Decay Rate Constant of up to 2 × 10<sup>6</sup> s<sup>−1</sup>: High‐Efficiency Green OLEDs with Operational Lifetime (LT<sub>90</sub>) Longer than 1800 h at 1000 cd m<sup>−2</sup>
Eliminating the Reverse ISC Bottleneck of TADF Through Excited State Engineering and Environment‐Tuning Toward State Resonance Leading to Mono‐Exponential Sub‐µs Decay. High OLED External Quantum Efficiency Confirms Efficient Exciton Harvesting
Gold(I) Multi‐Resonance Thermally Activated Delayed Fluorescent Emitters for Highly Efficient Ultrapure‐Green Organic Light‐Emitting Diodes
Cu(I) and Ag(I) Complexes with a New Type of Rigid Tridentate N,P,P-Ligand for Thermally Activated Delayed Fluorescence and OLEDs with High External Quantum Efficiency