Area of research
Electrical and Electronic Engineering · Materials Chemistry
Research interest
Research interests include Exciton, Singlet state, Materials science, OLED, Intersystem crossing, and Optoelectronics.
Symmetry Breaking and Hydrogen Bonding in Phthalimide Compounds Enable Efficient Room‐Temperature Circularly Polarized Phosphorescence in Solution
Symmetry Breaking and Hydrogen Bonding in Phthalimide Compounds Enable Efficient Room‐Temperature Circularly Polarized Phosphorescence in Solution
Stepwise π-extension of double [5]helicene diimides to planar nanographene diimides
Decoupling excitons from high-frequency vibrations in organic molecules
Efficient near-infrared organic light-emitting diodes with emission from spin doublet excitons
Fast Transfer of Triplet to Doublet Excitons from Organometallic Host to Organic Radical Semiconductors
<i>Peri</i>‐Alkylated Terrylenes and Ternaphthalenes Building‐Blocks Towards Multi‐Edge Nanographenes**
Radical Spin Polarization and Magnetosensitivity from Reversible Energy Transfer
Spin-optical design of organic radicals for photochemical upconversion
Reversible spin-optical interface in luminescent organic radicals
Efficient and Bright Organic Radical Light‐Emitting Diodes with Low Efficiency Roll‐Off
Suppressing non-radiative losses in organic semiconductors caused by high-frequency molecular vibrations
Molecular spin-optical dynamics for optoelectronics
Radical design of intermolecular spin-optical interfaces in organic semiconductors
Singlet and triplet to doublet energy transfer: improving organic light-emitting diodes with radicals
Dielectric control of reverse intersystem crossing in thermally activated delayed fluorescence emitters
Near‐Infrared Light‐Emitting Diodes from Organic Radicals with Charge Control
Rapid Triplet Harvesting by Radical Emitters
Understanding emission mechanism and device engineering for efficient organic radical light-emitting diodes
Efficient light-emitting diodes from organic radicals with doublet emission
Electron spin resonance resolves intermediate triplet states in delayed fluorescence
Spontaneous exciton dissociation enables spin state interconversion in delayed fluorescence organic semiconductors
Electron spin resonance resolves intermediate triplet states in delayed fluorescence
Hyperfine versus spin-vibronic coupling: or do both drive TADF?
Electron spin resonance resolves intermediate triplet states in delayed fluorescence