Ether-soluble hole-transporting polymers based on triphenylamine/phenothiazine moieties with shallow HOMO levels

Novel ether-soluble hole-transporting polymers with shallow HOMO levels were used as efficient electron donors of charge carrier generation layers for tandem OLEDs.

[1]  Junbiao Peng,et al.  Achieving highly efficient blue light-emitting polymers by incorporating a styrylarylene amine unit , 2018 .

[2]  Yun Chen,et al.  Polyazomethines based on oxadiazolyl or 1,2,4-triazolyl groups: Synthesis and hole-buffering application in polymer light-emitting diodes , 2018 .

[3]  S. Grigalevicius,et al.  Crosslinkable hole-transporting small molecule as a mixed host for efficient solution-processed red organic light emitting diodes , 2018, Thin Solid Films.

[4]  Sora Park,et al.  A cross-linkable hole transport material having improved mobility through a semi-interpenetrating polymer network approach for solution-processed green PHOLEDs , 2018 .

[5]  M. Cho,et al.  Solution-processed thermally activated delayed fluorescence organic light-emitting diodes using a new polymeric emitter containing non-conjugated cyclohexane units , 2018 .

[6]  Junbiao Peng,et al.  Crosslinkable triphenylamine-based hole-transporting polymers for solution-processed polymer light-emitting diodes , 2018 .

[7]  Dongge Ma,et al.  High performance hybrid tandem white organic light-emitting diodes by using a novel intermediate connector , 2018 .

[8]  X. Jin,et al.  The space charge limited current and huge linear magnetoresistance in silicon , 2018, Scientific Reports.

[9]  R. He,et al.  Deep-blue light-emitting polyfluorenes containing spiro[fluorene-9,9′-thioxanthene-S,S-dioxide] isomers , 2017 .

[10]  Molecular Tailoring of Phenothiazine-Based Hole-Transporting Materials for High-Performing Perovskite Solar Cells , 2017 .

[11]  D. Kabra,et al.  A review on triphenylamine (TPA) based organic hole transport materials (HTMs) for dye sensitized solar cells (DSSCs) and perovskite solar cells (PSCs): evolution and molecular engineering , 2017 .

[12]  Yan-Qing Li,et al.  Tandem Organic Light‐Emitting Diodes , 2016, Advanced materials.

[13]  Yiwang Chen,et al.  Interface-induced face-on orientation of the active layer by self-assembled diblock conjugated polyelectrolytes for efficient organic photovoltaic cells , 2016 .

[14]  M. Grätzel,et al.  Hole-Transport Materials for Perovskite Solar Cells. , 2016, Angewandte Chemie.

[15]  D. Liaw,et al.  High-Purity Semiconducting Single-Walled Carbon Nanotubes via Selective Dispersion in Solution Using Fully Conjugated Polytriarylamines , 2016 .

[16]  Junbiao Peng,et al.  An Alkane-Soluble Dendrimer as Electron-Transport Layer in Polymer Light-Emitting Diodes. , 2016, ACS applied materials & interfaces.

[17]  Ramasamy Ganesamoorthy,et al.  Review of carbazole based conjugated molecules for highly efficient organic solar cell application , 2016 .

[18]  P. E. Keivanidis,et al.  Understanding the Light Soaking Effects in Inverted Organic Solar Cells Functionalized with Conjugated Macroelectrolyte Electron‐Collecting Interlayers , 2015, Advanced science.

[19]  Christoph Wolf,et al.  Highly Efficient, Simplified, Solution‐Processed Thermally Activated Delayed‐Fluorescence Organic Light‐Emitting Diodes , 2016, Advanced materials.

[20]  Junji Kido,et al.  Solution‐Processed White Phosphorescent Tandem Organic Light‐Emitting Devices , 2015, Advanced materials.

[21]  Licheng Sun,et al.  Recent Progress on Hole‐Transporting Materials for Emerging Organometal Halide Perovskite Solar Cells , 2015 .

[22]  G. Ozin,et al.  Synthesis of poly(spirosilabifluorene) copolymers and their improved stability in blue emitting polymer LEDs over non-spiro analogs , 2015 .

[23]  A. Monkman,et al.  The role of exciplex states in phosphorescent OLEDs with poly(vinylcarbazole) (PVK) host , 2015 .

[24]  Jingkun Xu,et al.  Effective Approaches to Improve the Electrical Conductivity of PEDOT:PSS: A Review , 2015 .

[25]  F. Huang,et al.  Water/alcohol soluble conjugated polymers for the interface engineering of highly efficient polymer light-emitting diodes and polymer solar cells. , 2015, Chemical communications.

[26]  A novel blue fluorescent polymer for solution-processed fluorescent–phosphorescent hybrid WOLEDs , 2015 .

[27]  P. E. Keivanidis,et al.  Well-defined star-shaped conjugated macroelectrolytes as efficient electron-collecting interlayer for inverted polymer solar cells. , 2015, ACS applied materials & interfaces.

[28]  J. Kido,et al.  Fabrication of Organic Light‐Emitting Devices Comprising Stacked Light‐Emitting Units by Solution‐Based Processes , 2015, Advanced materials.

[29]  Michael Bruns,et al.  Solution Processed, White Emitting Tandem Organic Light‐Emitting Diodes with Inverted Device Architecture , 2014, Advanced materials.

[30]  D. Bradley,et al.  Fluorene-based cathode interlayer polymers for high performance solution processed organic optoelectronic devices , 2014 .

[31]  Wenyong Lai,et al.  A hydrophilic monodisperse conjugated starburst macromolecule with multidimensional topology as electron transport/injection layer for organic electronics , 2014 .

[32]  Martin Baumgarten,et al.  Designing pi-conjugated polymers for organic electronics , 2013 .

[33]  F. Huang,et al.  Recent advances in water/alcohol-soluble π-conjugated materials: new materials and growing applications in solar cells. , 2013, Chemical Society reviews.

[34]  Kyriaki Manoli,et al.  Organic field-effect transistor sensors: a tutorial review. , 2013, Chemical Society reviews.

[35]  Raphael Schlesinger,et al.  Bright Blue Solution Processed Triple‐Layer Polymer Light‐Emitting Diodes Realized by Thermal Layer Stabilization and Orthogonal Solvents , 2013 .

[36]  Hee Cheul Choi,et al.  Synthesis of a p-type semiconducting phenothiazine exfoliatable layered crystal. , 2013, Langmuir : the ACS journal of surfaces and colloids.

[37]  Yuying Hao,et al.  Efficient tandem organic light-emitting device based on photovoltaic-type connector with positive cycle , 2013 .

[38]  Lei Zhang,et al.  A review of electrode materials for electrochemical supercapacitors. , 2012, Chemical Society reviews.

[39]  Itaru Osaka,et al.  Thienoacene‐Based Organic Semiconductors , 2011, Advanced materials.

[40]  A. Iwan,et al.  Polymers with triphenylamine units: Photonic and electroactive materials , 2011 .

[41]  Paul W. M. Blom,et al.  A facile route to inverted polymer solar cells using a precursor based zinc oxide electron transport layer , 2010 .

[42]  Lei Wang,et al.  Anionic triphenylamine- and fluorene-based conjugated polyelectrolyte as a hole-transporting material for polymer light-emitting diodes , 2009 .

[43]  Yun Chen,et al.  Copolymers containing pendant styryltriphenylamine and carbazole groups: Synthesis, optical, electrochemical properties and its blend with Ir(ppy)3 , 2009 .

[44]  T. Riedl,et al.  Temperature-independent field-induced charge separation at doped organic/organic interfaces: Experimental modeling of electrical properties , 2007 .

[45]  Chun-Sing Lee,et al.  Effective organic-based connection unit for stacked organic light-emitting devices , 2006 .

[46]  F. Huang,et al.  Synthesis of novel triphenylamine-based conjugated polyelectrolytes and their application as hole-transport layers in polymeric light-emitting diodes , 2006 .

[47]  Tobin J Marks,et al.  High-performance hole-transport layers for polymer light-emitting diodes. Implementation of organosiloxane cross-linking chemistry in polymeric electroluminescent devices. , 2005, Journal of the American Chemical Society.

[48]  Stephen R. Forrest,et al.  The path to ubiquitous and low-cost organic electronic appliances on plastic , 2004, Nature.

[49]  Ching Wan Tang,et al.  High-efficiency tandem organic light-emitting diodes , 2004 .

[50]  J. Kido,et al.  27.1: Invited Paper: High Efficiency Organic EL Devices having Charge Generation Layers , 2003 .

[51]  Haoke Zhang,et al.  Effects of Chain Ends and Chain Entanglement on the Glass Transition Temperature of Polymer Thin Films , 2001 .

[52]  C. Brabec,et al.  Plastic Solar Cells , 2001 .

[53]  C. Tang,et al.  Organic Electroluminescent Diodes , 1987 .