Asymmetric anthracene derivatives as multifunctional electronic materials for constructing simplified and efficient non-doped homogeneous deep blue fluorescent OLEDs

[1]  Chunmiao Han,et al.  Excited-state engineering of universal ambipolar hosts for highly efficient blue phosphorescence and thermally activated delayed fluorescence organic light-emitting diodes , 2020 .

[2]  Wei Huang,et al.  Evoking non-bonding S-π interaction by aryl phosphine sulfide for selectively enhanced electronic property of organic semiconductors , 2020 .

[3]  C. Adachi,et al.  Triplet–triplet upconversion enhanced by spin–orbit coupling in organic light-emitting diodes , 2019, Nature Communications.

[4]  Chunmiao Han,et al.  Spirobicyclic host material with pseudo-intramolecular charge transfer: Improving color purity of high-performance pure-blue and white thermally activated delayed fluorescence diodes , 2019, Chemical Engineering Journal.

[5]  P. Lu,et al.  Highly efficient deep-blue organic light-emitting diodes based on pyreno[4,5-d]imidazole-anthracene structural isomers , 2019, Journal of Materials Chemistry C.

[6]  Lei Wang,et al.  Integrating TADF luminogens with AIE characteristics using a novel acridine–carbazole hybrid as donor for high-performance and low efficiency roll-off OLEDs , 2019, Journal of Materials Chemistry C.

[7]  Yuguang Ma,et al.  Efficient Deep-Blue Fluorescent OLEDs with High Exciton Utilization Efficiency from a Fully Twisted Phenanthroimidazole-Anthracene Emitter. , 2019, ACS applied materials & interfaces.

[8]  Paul W. M. Blom,et al.  Efficient and stable single-layer organic light-emitting diodes based on thermally activated delayed fluorescence , 2019, Nature Photonics.

[9]  Yong Cao,et al.  Efficient soluble deep blue electroluminescent dianthracenylphenylene emitters with CIE y (y ≤ 0.08) based on triplet-triplet annihilation. , 2019, Science bulletin.

[10]  Tien-Lung Chiu,et al.  Blue organic light-emitting diodes: current status, challenges, and future outlook , 2019, Journal of Materials Chemistry C.

[11]  L. Duan,et al.  Polycyclic Aromatic Hydrocarbon Derivatives toward Ideal Electron-Transporting Materials for Organic Light-Emitting Diodes. , 2019, The journal of physical chemistry letters.

[12]  Lei Wang,et al.  Boosting the performance of sky-blue fluorescent OLEDs based on DPA-containing electron-transporting materials with a “V-shaped layout of triplet energy levels” , 2019, Materials Chemistry Frontiers.

[13]  Jang Hyuk Kwon,et al.  Highly efficient blue thermally activated delayed fluorescence emitters based on symmetrical and rigid oxygen-bridged boron acceptors , 2019, Nature Photonics.

[14]  Yuguang Ma,et al.  Highly Efficient Blue Fluorescent OLEDs Based on Upper Level Triplet–Singlet Intersystem Crossing , 2019, Advanced materials.

[15]  Wei Liu,et al.  Nondoped blue fluorescent organic light-emitting diodes based on benzonitrile-anthracene derivative with 10.06% external quantum efficiency and low efficiency roll-off , 2019, Journal of Materials Chemistry C.

[16]  Lei Wang,et al.  New multifunctional aggregation-induced emission fluorophores for reversible piezofluorochromic and nondoped sky-blue organic light-emitting diodes , 2018, Dyes and Pigments.

[17]  Feng Li,et al.  Efficient radical-based light-emitting diodes with doublet emission , 2018, Nature.

[18]  L. Duan,et al.  High‐Performance Fluorescent Organic Light‐Emitting Diodes Utilizing an Asymmetric Anthracene Derivative as an Electron‐Transporting Material , 2018, Advanced materials.

[19]  S. Barlow,et al.  A blue thermally activated delayed fluorescence emitter developed by appending a fluorene moiety to a carbazole donor with meta-linkage for high-efficiency OLEDs , 2018 .

[20]  Shouke Yan,et al.  All-organic thermally activated delayed fluorescence materials for organic light-emitting diodes , 2018 .

[21]  P. Lu,et al.  Efficient Nondoped Blue Fluorescent Organic Light‐Emitting Diodes (OLEDs) with a High External Quantum Efficiency of 9.4% @ 1000 cd m−2 Based on Phenanthroimidazole−Anthracene Derivative , 2018 .

[22]  Jang‐Joo Kim,et al.  Strategies for the Molecular Design of Donor–Acceptor-type Fluorescent Emitters for Efficient Deep Blue Organic Light Emitting Diodes , 2018 .

[23]  Hui Lin,et al.  Multifunctional Phenanthroimidazole Derivatives to Realize High‐Performance Deep‐Blue and White Organic Light‐Emitting Diodes , 2017 .

[24]  J. Kido,et al.  Horizontally Orientated Sticklike Emitters: Enhancement of Intrinsic Out-Coupling Factor and Electroluminescence Performance , 2017 .

[25]  Lian Duan,et al.  Ultrahigh‐Efficiency Green PHOLEDs with a Voltage under 3 V and a Power Efficiency of Nearly 110 lm W−1 at Luminance of 10 000 cd m−2 , 2017, Advanced materials.

[26]  De-qiang Zhang,et al.  Sterically Shielded Electron Transporting Material with Nearly 100% Internal Quantum Efficiency and Long Lifetime for Thermally Activated Delayed Fluorescent and Phosphorescent OLEDs. , 2017, ACS applied materials & interfaces.

[27]  Yuguang Ma,et al.  Highly Efficient Deep Blue Organic Light-Emitting Diodes Based on Imidazole: Significantly Enhanced Performance by Effective Energy Transfer with Negligible Efficiency Roll-off. , 2016, ACS applied materials & interfaces.

[28]  Chunmiao Han,et al.  Dual Encapsulation of Electron Transporting Materials To Simplify High-Efficiency Blue Thermally Activated Delayed Fluorescence Devices , 2016 .

[29]  Lei Wang,et al.  Design, synthesis, characterization and application of a novel electron-deficient moiety 1,5-diazacarbazole in high triplet energy host materials , 2016 .

[30]  Junbiao Peng,et al.  Promising Operational Stability of Potentially High Power Efficiency Organic Light‐Emitting Diodes Utilizing a Simple and Versatile Electron‐Transport/Hole‐Blocking Layer , 2016 .

[31]  Chun‐Sing Lee,et al.  Blue-emitting organic electrofluorescence materials: progress and prospective , 2015 .

[32]  Kwon-Hyeon Kim,et al.  Phosphorescent dye-based supramolecules for high-efficiency organic light-emitting diodes , 2014, Nature Communications.

[33]  Takahiro Higuchi,et al.  High-efficiency organic light-emitting diodes with fluorescent emitters , 2014, Nature Communications.

[34]  Lei Wang,et al.  Construction of High Tg Bipolar Host Materials with Balanced Electron-Hole Mobility Based on 1,2,4-Thiadiazole for Phosphorescent Organic Light-Emitting Diodes , 2014 .

[35]  Jang‐Joo Kim,et al.  Extremely deep blue and highly efficient non-doped organic light emitting diodes using an asymmetric anthracene derivative with a xylene unit. , 2013, Chemical communications.

[36]  Chien-Jung Chiang,et al.  Deep Blue Exciplex Organic Light‐Emitting Diodes with Enhanced Efficiency; P‐type or E‐type Triplet Conversion to Singlet Excitons? , 2013, Advanced materials.

[37]  C. Adachi,et al.  Highly efficient organic light-emitting diodes from delayed fluorescence , 2012, Nature.

[38]  S. Jeon,et al.  Phosphine oxide derivatives for organic light emitting diodes , 2012 .

[39]  Yong Qiu,et al.  Strategies to Design Bipolar Small Molecules for OLEDs: Donor‐Acceptor Structure and Non‐Donor‐Acceptor Structure , 2011, Advanced materials.

[40]  Chen‐Han Chien,et al.  Multifunctional Deep‐Blue Emitter Comprising an Anthracene Core and Terminal Triphenylphosphine Oxide Groups , 2009 .

[41]  Ken‐Tsung Wong,et al.  Employing ambipolar oligofluorene as the charge-generation layer in time-of-flight mobility measurements of organic thin films , 2006 .

[42]  A. Monkman,et al.  Triplet exciton migration in a conjugated polyfluorene , 2003 .

[43]  A. Monkman,et al.  Delayed electroluminescence via triplet–triplet annihilation in light emitting diodes based on poly[2-methoxy-5-(2′-ethyl-hexyloxy)-1,4-phenylene vinylene] , 2003 .

[44]  R. Friend,et al.  Analysis of the turn-off dynamics in polymer light-emitting diodes , 2000 .