Using Guest-Host Interactions To Optimize the Efficiency of TADF OLEDs.
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A. Monkman | Andrew P Monkman | M. Bryce | Martin R Bryce | Jonathan S. Ward | Paloma L Dos Santos | Jonathan S Ward | Paloma L. dos Santos
[1] C. Adachi,et al. Efficient blue organic light-emitting diodes employing thermally activated delayed fluorescence , 2014, Nature Photonics.
[2] Martin R. Bryce,et al. Triplet Harvesting with 100% Efficiency by Way of Thermally Activated Delayed Fluorescence in Charge Transfer OLED Emitters , 2013, Advanced materials.
[3] Gregor Schwartz,et al. White organic light-emitting diodes with fluorescent tube efficiency , 2009, Nature.
[4] C. Adachi,et al. Highly efficient organic light-emitting diodes by delayed fluorescence , 2013 .
[5] Takahiro Higuchi,et al. High‐Efficiency White Organic Light‐Emitting Diodes Based on a Blue Thermally Activated Delayed Fluorescent Emitter Combined with Green and Red Fluorescent Emitters , 2015, Advanced materials.
[6] C. Tang,et al. Organic Electroluminescent Diodes , 1987 .
[7] Chihaya Adachi,et al. Organic light-emitting diodes employing efficient reverse intersystem crossing for triplet-to-singlet state conversion , 2012, Nature Photonics.
[8] A. Monkman,et al. Engineering the singlet–triplet energy splitting in a TADF molecule , 2016 .
[9] A. Monkman,et al. Intramolecular charge transfer assisted by conformational changes in the excited state of fluorene-dibenzothiophene-S,S-dioxide co-oligomers. , 2006, The journal of physical chemistry. B.
[10] Martin R. Bryce,et al. Highly Efficient TADF OLEDs: How the Emitter–Host Interaction Controls Both the Excited State Species and Electrical Properties of the Devices to Achieve Near 100% Triplet Harvesting and High Efficiency , 2014 .
[11] C. Adachi,et al. High-efficiency organic light-emitting diodes utilizing thermally activated delayed fluorescence from triazine-based donor–acceptor hybrid molecules , 2012 .
[12] Ying Wang,et al. Novel Thermally Activated Delayed Fluorescence Materials–Thioxanthone Derivatives and Their Applications for Highly Efficient OLEDs , 2014, Advanced materials.
[13] M. Berberan-Santos,et al. The Role of Local Triplet Excited States and D‐A Relative Orientation in Thermally Activated Delayed Fluorescence: Photophysics and Devices , 2016, Advanced science.
[14] F. Dias. Kinetics of thermal-assisted delayed fluorescence in blue organic emitters with large singlet–triplet energy gap , 2015, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[15] Andrew P. Monkman,et al. The Importance of Vibronic Coupling for Efficient Reverse Intersystem Crossing in Thermally Activated Delayed Fluorescence Molecules , 2016, Chemphyschem : a European journal of chemical physics and physical chemistry.
[16] Christel M. Marian,et al. Mechanism of the Triplet-to-Singlet Upconversion in the Assistant Dopant ACRXTN , 2016 .
[17] A. K. Chandra,et al. Radiationless transitions in electron donor-acceptor complexes: selection rules for S1 → T intersystem crossing and efficiency of S1 → S0 internal conversion , 1981 .
[18] Shouke Yan,et al. Rational Design of TADF Polymers Using a Donor–Acceptor Monomer with Enhanced TADF Efficiency Induced by the Energy Alignment of Charge Transfer and Local Triplet Excited States , 2016 .