Visible light communication with efficient far-red/near-infrared polymer light-emitting diodes
暂无分享,去创建一个
P. Haigh | F. Cacialli | I. Darwazeh | D. Gryko | Alessandro Minotto | E. Lunedei | Łukasz G. Łukasiewicz
[1] Hao-Chung Kuo,et al. Toward high-speed visible laser lighting based optical wireless communications , 2019, Progress in Quantum Electronics.
[2] Sihong Wang,et al. Inkjet-printed stretchable and low voltage synaptic transistor array , 2019, Nature Communications.
[3] Zabih Ghassemlooy,et al. Experimental Demonstration of Staggered CAP Modulation for Low Bandwidth Red-Emitting Polymer-LED Based Visible Light Communications , 2019, 2019 IEEE International Conference on Communications Workshops (ICC Workshops).
[4] D. O’brien,et al. A Wide-Area Coverage 35 Gb/s Visible Light Communications Link for Indoor Wireless Applications , 2019, Scientific Reports.
[5] Franco Cacialli,et al. Near‐Infrared (NIR) Organic Light‐Emitting Diodes (OLEDs): Challenges and Opportunities , 2019, Advanced Functional Materials.
[6] Oskar Sachnik,et al. π-Expanded diketopyrrolopyrroles as acceptor building blocks for the formation of novel donor–acceptor copolymers , 2019, Polymer Chemistry.
[7] Donggeon Han,et al. A flexible organic reflectance oximeter array , 2018, Proceedings of the National Academy of Sciences.
[8] C. Brabec,et al. Spray‐Coated Organic Photodetectors and Image Sensors with Silicon‐Like Performance , 2018, Advanced Materials Technologies.
[9] Changzheng Sun,et al. Improving modulation bandwidth of c-plane GaN-based light-emitting diodes by an ultra-thin quantum wells design. , 2018, Optics express.
[10] Chao-Hsin Wu,et al. 752-MHz Modulation Bandwidth of High-Speed Blue Micro Light-Emitting Diodes , 2018, IEEE Journal of Quantum Electronics.
[11] Franco Cacialli,et al. Efficient Near‐Infrared Electroluminescence at 840 nm with “Metal‐Free” Small‐Molecule:Polymer Blends , 2018, Advanced materials.
[12] Franco Nori,et al. A phonon laser operating at an exceptional point , 2018, Nature Photonics.
[13] Priyanka de Souza,et al. High-Bandwidth Organic Light Emitting Diodes for Ultra-Low Cost Visible Light Communication Links , 2018, International Conference on Transparent Optical Networks.
[14] Peng Gao,et al. High-efficiency perovskite–polymer bulk heterostructure light-emitting diodes , 2018, 1804.09785.
[15] Zhengyuan Xu,et al. A 51.6 Mb/s Experimental VLC System Using a Monochromic Organic LED , 2018, IEEE Photonics Journal.
[16] Stefan Videv,et al. Flexible Glass Hybridized Colloidal Quantum Dots for Gb/s Visible Light Communications , 2018, IEEE Photonics Journal.
[17] Atula S. D. Sandanayaka,et al. High-efficiency electroluminescence and amplified spontaneous emission from a thermally activated delayed fluorescent near-infrared emitter , 2018 .
[18] Zabih Ghassemlooy,et al. On the m-CAP Performance with Different Pulse Shaping Filters Parameters for Visible Light Communications , 2017, IEEE Photonics Journal.
[19] C. Brabec,et al. The fabrication of color-tunable organic light-emitting diode displays via solution processing , 2017, Light: Science & Applications.
[20] Franco Cacialli,et al. Highly Efficient Solid-State Near-infrared Organic Light-Emitting Diodes incorporating A-D-A Dyes based on α,β-unsubstituted “BODIPY” Moieties , 2017, Scientific Reports.
[21] T. Pędziński,et al. The impact of interplay between electronic and steric effects on the synthesis and the linear and non-linear optical properties of diketopyrrolopyrrole bearing benzofuran moieties , 2017 .
[22] Morteza Monavarian,et al. High-Speed Nonpolar InGaN/GaN LEDs for Visible-Light Communication , 2017, IEEE Photonics Technology Letters.
[23] Gong-Ru Lin,et al. Tricolor R/G/B Laser Diode Based Eye-Safe White Lighting Communication Beyond 8 Gbit/s , 2017, Scientific Reports.
[24] Gong-Ru Lin,et al. Blue Laser Diode Enables Underwater Communication at 12.4 Gbps , 2017, Scientific Reports.
[25] Abdallah Khreishah,et al. Pixelated VLC-Backscattering for Self-Charging Indoor IoT Devices , 2016, IEEE Photonics Technology Letters.
[26] A. Rao,et al. A Complete Quantitative Analysis of Spatio‐Temporal Dynamics of Excitons in Functional Organic Light‐Emitting Diodes , 2017 .
[27] Yun Chi,et al. Near-infrared organic light-emitting diodes with very high external quantum efficiency and radiance , 2016, Nature Photonics.
[28] X. Huang,et al. Y-Doped BaTiO3 as a Charge-Trapping Layer for Nonvolatile Memory Applications , 2016, IEEE Electron Device Letters.
[29] I. White,et al. High Bandwidth GaN-Based Micro-LEDs for Multi-Gb/s Visible Light Communications , 2016, IEEE Photonics Technology Letters.
[30] Jinn-Kong Sheu,et al. III-Nitride-Based Cyan Light-Emitting Diodes With GHz Bandwidth for High-Speed Visible Light Communication , 2016, IEEE Electron Device Letters.
[31] Hao-Chung Kuo,et al. Phosphorous Diffuser Diverged Blue Laser Diode for Indoor Lighting and Communication , 2015, Scientific Reports.
[32] Jiansheng Jie,et al. Wafer‐Scale Precise Patterning of Organic Single‐Crystal Nanowire Arrays via a Photolithography‐Assisted Spin‐Coating Method , 2015, Advanced materials.
[33] Dong In Kim,et al. Wireless backhauling of 5G small cells: challenges and solution approaches , 2015, IEEE Wireless Communications.
[34] Thomas D. C. Little,et al. Toward practical integration of dual-use VLC within 5G networks , 2015, IEEE Wireless Communications.
[35] Hao-Chung Kuo,et al. 450-nm GaN laser diode enables high-speed visible light communication with 9-Gbps QAM-OFDM. , 2015, Optics express.
[36] Hoa Le Minh,et al. Wavelength-Multiplexed Polymer LEDs: Towards 55 Mb/s Organic Visible Light Communications , 2015, IEEE Journal on Selected Areas in Communications.
[37] D. Gryko,et al. Diketopyrrolopyrroles: Synthesis, Reactivity, and Optical Properties , 2015 .
[38] Weiwei Li,et al. A real-time study of the benefits of co-solvents in polymer solar cell processing , 2015, Nature Communications.
[39] M. Blanchard‐Desce,et al. Two-photon-induced fluorescence in new π-expanded diketopyrrolopyrroles. , 2014, Chemistry.
[40] R. Friend,et al. Highly efficient inverted polymer light-emitting diodes using surface modifications of ZnO layer , 2014, Nature Communications.
[41] A D Ellis,et al. 10 Mb/s visible light transmission system using a polymer light-emitting diode with orthogonal frequency division multiplexing. , 2014, Optics letters.
[42] Carlos Silva,et al. H- and J-aggregate behavior in polymeric semiconductors. , 2014, Annual review of physical chemistry.
[43] Zabih Ghassemlooy,et al. Visible light communications: real time 10 Mb/s link with a low bandwidth polymer light-emitting diode. , 2014, Optics express.
[44] Mats Andersson,et al. Efficient red electroluminescence from diketopyrrolopyrrole copolymerised with a polyfluorene , 2013 .
[45] F. Cacialli,et al. Straightforward access to diketopyrrolopyrrole (DPP) dimers , 2013 .
[46] C. Adachi,et al. Highly efficient organic light-emitting diodes by delayed fluorescence , 2013 .
[47] Richard H. Friend,et al. Triplet dynamics in fluorescent polymer light-emitting diodes , 2012 .
[48] Harald Haas,et al. Indoor optical wireless communication: potential and state-of-the-art , 2011, IEEE Communications Magazine.
[49] Jonathan Binas,et al. Linear and cyclic porphyrin hexamers as near-infrared emitters in organic light-emitting diodes. , 2011, Nano letters.
[50] Franco Cacialli,et al. Time dependence and freezing-in of the electrode oxygen plasma-induced work function enhancement in polymer semiconductor heterostructures , 2011 .
[51] H. Sirringhaus,et al. Thieno[3,2-b]thiophene-diketopyrrolopyrrole-containing polymers for high-performance organic field-effect transistors and organic photovoltaic devices. , 2011, Journal of the American Chemical Society.
[52] Knut Rurack,et al. Fluorescence quantum yields of a series of red and near-infrared dyes emitting at 600-1000 nm. , 2011, Analytical chemistry.
[53] Tukaram K. Hatwar,et al. Triplet annihilation exceeding spin statistical limit in highly efficient fluorescent organic light-emitting diodes , 2009 .
[54] Ullrich Scherf,et al. Ladder-type materials , 1999 .
[55] Richard H. Friend,et al. An improved experimental determination of external photoluminescence quantum efficiency , 1997 .
[56] H. Anderson. Conjugated Porphyrin Ladders , 1994 .
[57] Joshua Jortner,et al. The energy gap law for radiationless transitions in large molecules , 1970 .