Professor David Lidzey
School of Mathematical and Physical Sciences
Professor of Physics
d.g.lidzey@sheffield.ac.uk
+44 114 222 3501
+44 114 222 3501
D18, Hicks Building
Full contact details
Professor David Lidzey
School of Mathematical and Physical Sciences
D18
Hicks Building
Hounsfield Road
91直播
S3 7RH
School of Mathematical and Physical Sciences
D18
Hicks Building
Hounsfield Road
91直播
S3 7RH
- Research interests
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- Development and evaluation of solution processed photovoltaic devices
- Organic and hybrid photonic devices and structures
- Organic and hybrid semiconductor polaritons
- Spectroscopy of functional semiconductor materials
- Conjugated polymers and perovskites
- Structural probes of thin-film materials
- Publications
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Show: Featured publications All publications
Featured publications
Journal articles
All publications
Journal articles
- . Advanced Optical Materials, 12(25).
- . Solar RRL, 8(2).
- . The Journal of Chemical Physics, 159(23).
- . Tetrahedron.
- . Journal of Materials Chemistry C.
- . Advanced Energy Materials.
- . Molecules, 27(20).
- . Solar RRL, 6(8), 2270081-2270081.
- . Solar RRL.
- . Advanced Science, 9(14), 2270087.
- . Journal of Materials Chemistry C, 10(11), 4187-4195.
- . Advanced Science.
- . Science Advances, 8(2).
- . Nature Communications, 12(1).
- . International Journal of Electrochemical Science, 16.
- . Scientific Reports, 11(1).
- . Angewandte Chemie International Edition.
- . ChemSusChem.
- . Journal of Applied Physics, 129(20).
- . Advanced Energy Materials.
- . ChemSusChem.
- . The Journal of Chemical Physics, 154(12).
- . Journal of Materials Chemistry C.
- . Scientific Reports, 10(1).
- . Communications Physics, 3(1).
- . The Journal of Physical Chemistry Letters, 11(22), 9893-9900.
- . ACS Applied Materials & Interfaces.
- . ACS Photonics.
- . Physica E: Low-dimensional Systems and Nanostructures, 118.
- . Journal of Materials Chemistry A.
- . Journal of Materials Chemistry A, 8(8), 4230-4238.
- . Advanced Quantum Technologies, 3(2), 2070021-2070021.
- . Science China Chemistry, 63(10), 1461-1468.
- . Advanced Energy Materials, 10(4).
- . Chemical Science, 11(2), 343-354.
- . Journal of Materials Chemistry C, 7(27), 8389-8397.
- . Applied Physics Reviews, 6(4).
- . Light: Science & Applications, 8(1).
- . Advanced Quantum Technologies.
- . ACS Energy Letters, 4(10), 2378-2385.
- . Science China Chemistry, 62(9), 1221-1229.
- . ACS Applied Materials & Interfaces, 11(29), 26194-26203.
- . Nano Energy, 61, 318-326.
- . Energy & Environmental Science, 12(6), 1928-1937.
- . Journal of Materials Chemistry A, 7(18), 11104-11116.
- . Advanced Optical Materials.
- . Energy & Environmental Science.
- . Reports on Progress in Physics, 82(3).
- . Joule, 3(3), 819-833.
- . Journal of Materials Chemistry A, 7(5), 2283-2290.
- . AIP Advances, 9(1).
- . Journal of Materials Chemistry A, 6(45), 23010-23018.
- . Scientific Reports, 8(1).
- . ACS Photonics, 5(11), 4343-4351.
- . ACS Applied Materials & Interfaces, 10(46), 39428-39434.
- . Royal Society Open Science.
- . Solar RRL, 2(9), 1870204-1870204.
- . Solar RRL, 2(9).
- . Advanced Energy Materials, 8(24).
- . Advanced Science, 5(8), 1800434-1800434.
- . Physical Chemistry Chemical Physics, 20(28), 19023-19029.
- . Nature Communications, 9(1).
- . ACS Applied Energy Materials, 1(7), 3505-3512.
- . The Journal of Physical Chemistry Letters, 9(8), 1977-1984.
- Cross-sectioning photovoltaic polymer blends with advanced gas-ion microscopy. Microscopy and Analysis, 32(2), 16-18.
- . Optics Express, 26(3), 3320-3327.
- . Energy Science & Engineering, 6(1), 35-46.
- . Advanced Functional Materials, 28(5).
- . ACS Photonics, 5(1), 258-266.
- . Energy & Environmental Science.
- . Small, 13(38).
- . Small, 13(38).
- . Advanced Optical Materials, 5(18).
- . Nano Letters, 17(9), 5521-5525.
- . Scientific Reports, 7(1).
- . Advanced Optical Materials, 5(18).
- . Journal of Electron Spectroscopy and Related Phenomena.
- . Sci Rep, 7(1).
- . Journal of Materials Chemistry A, 5(30), 15714-15723.
- . Journal of Materials Chemistry C, 5, 8380-8389.
- . ACS Omega, 2(5), 2126-2133.
- . Scientific Reports, 7.
- . Macromolecules, 50(8), 3301-3312.
- . Scientific Reports, 7.
- . Journal of Materials Chemistry C.
- . Organic Electronics, 41, 245-250.
- . Solar Energy Materials and Solar Cells, 160, 182-192.
- . Nature Communications, 8.
- . J Phys Chem Lett, 8, 547-552.
- . Journal of Materials Research.
- . Advanced Materials, 29(1).
- . Advanced Materials, 29(1).
- . Advanced Functional Materials, 26(45), 8221-8230.
- . Advanced Functional Materials, 26(45), 8220-8220.
- . Journal of Materials Chemistry C, 4(45), 10722-10730.
- . Advanced Optical Materials, 4(10), 1614-1614.
- . Advanced Optical Materials, 4(10), 1615-1623.
- . European Polymer Journal, 85, 225-235.
- . Vacuum.
- . Ultramicroscopy, 171, 126-138.
- . Advanced Energy Materials.
- . Polymers for Advanced Technologies.
- . Advanced Functional Materials, 26(27), 4934-4942.
- . Nanotechnology, 27(22), 225203-225203.
- . CrystEngComm, 29(18), 5448-5455.
- . Journal of Polymer Science Part B: Polymer Physics, 54(10), 994-1001.
- . Materials, 9(4), 235-235.
- . Journal of Display Technology, 12(6), 583-588.
- . Progress in Photovoltaics: Research and Applications, 24(3), 275-282.
- . Scientific Reports, 6(1).
- . Reports on Progress in Physics, 79(2).
- . Journal of Polymer Science Part B: Polymer Physics, 54(2), 216-224.
- . Solar Energy Materials and Solar Cells, 144, 600-607.
- . Applied Physics Letters, 107(23), 231605-231605.
- Thienothiophene units properties on the carbazole-based polymers for organic solar cell devices. Malaysian Journal of Analytical Sciences, 19(6), 1205-1217.
- . APL Materials, 3(12).
- . Organic Electronics, 27, 266-273.
- . Polymer Testing, 47, 130-136.
- . Solar Energy Materials and Solar Cells, 140, 25-32.
- . Polymer Testing, 45, 124-131.
- . Polymer Bulletin, 72(7), 1775-1786.
- . Organic Electronics, 21, 216-222.
- . Journal of Materials Chemistry C, 3(16), 4007-4015.
- . Nature Communications, 6.
- . Applied Physics Letters, 106(7), 073301-073301.
- . Nature Communications, 6(1).
- . Sci Rep, 4, 5286.
- . Applied Physics A, 117(4), 2079-2086.
- . Polymer Testing, 40, 63-69.
- . Applied Physics Letters, 105(22), 223302-223302.
- . Synthetic Metals, 197, 23-33.
- . Journal of Materials Science, 49(14), 4751-4764.
- . Nat Mater, 13(7), 712-719.
- . Food Hydrocolloids, 37, 116-123.
- . Applied Physics Letters, 104(19).
- . Polymer Testing, 34, 183-191.
- . Organic Electronics, 15(3), 692-700.
- . APPLIED PHYSICS LETTERS, 104(6).
- . MRS Proceedings, 1657.
- . Nature Communications, 5(1).
- . Advanced Functional Materials.
- . Advanced Optical Materials, 1(12), 887-887.
- . Advanced Optical Materials, 1(12), 946-951.
- . Journal of Materials Chemistry C, 1(44), 7266-7293.
- . Applied Physics A, 113(2), 439-446.
- . Polymer Testing, 32(7), 1192-1201.
- . Physical Review B - Condensed Matter and Materials Physics, 88(12).
- . ADVANCED OPTICAL MATERIALS, 1(7), 503-509.
- . Macromolecular Rapid Communications, 34(14), 1157-1162.
- . Applied Physics Letters, 102(18).
- . AIP Advances, 3(5), 052116-052116.
- . Food Hydrocolloids, 31(1), 94-102.
- . Advanced Energy Materials, 3(7), 903-908.
- . Advanced Energy Materials, 3(4), 410-410.
- . Advanced Energy Materials, 3(4), 505-512.
- . Journal of Materials Chemistry A, 1, 5165-5171.
- . Chem Commun (Camb), 49(22), 2252-2254.
- . Journal of Applied Polymer Science, 127(3), 1803-1811.
- . Rep Prog Phys, 76(2), 022501.
- Strongly coupled hybrid frenkel/wannier-mott exciton polaritons in a high q microcavity. CLEO: Science and Innovations, CLEO_SI 2013.
- Strongly coupled hybrid frenkel/wannier-mott exciton polaritons in a high Q microcavity. CLEO: QELS_Fundamental Science, CLEO:QELS FS 2013.
- . EPJ Web of Conferences, 41.
- . Biointerphases, 7(1-4), 1-9.
- . Eur Phys J E Soft Matter, 35(12), 9807.
- . Biointerphases, 7(1-4), 54.
- . Advanced Functional Materials, 22(7), 1321-1321.
- . Journal of Polymer Research, 19(3).
- . MACROMOLECULES, 45(3), 1499-1508.
- . Polymer, 53(4), 976-983.
- Ultrafast dynamics of cavity polaritons in an organic semicondutor microcavity. 2012 International Conference on Fiber Optics and Photonics, PHOTONICS 2012.
- . Organic Electronics, 13(8), 1401-1408.
- . Proceedings of SPIE - The International Society for Optical Engineering, 8260.
- . Advanced Functional Materials, 22(7), 1399-1408.
- . Integrated Optics: Devices, Materials, and Technologies XVI.
- . Advanced Functional Materials, 21(19), 3690-3690.
- . Nano Lett, 11(10), 4275-4281.
- . J Phys Chem B, 115(42), 12028-12035.
- . PHYS REV B, 83(24).
- . Nanoscale, 3(6), 2511-2516.
- . Adv. Energy Mater., 1(4), 499-504.
- . MACROMOLECULES, 44(8), 2908-2917.
- . ADV FUNCT MATER, 21(8), 1383-1390.
- . Journal of Applied Physics, 109(8), 084509-084516.
- . Physical Review B - Condensed Matter and Materials Physics, 84(20).
- Ultrafast polariton population build-up mediated by molecular phonons in organic microcavities. APL: Organic Electronics and Photonics, 4(10).
- . Journal of Materials Chemistry, 21(48), 19324-19330.
- . Advanced Functional Materials, 21(19), 3691-3696.
- . Applied Physics Letters, 99(14).
- A regioregular head to tail thiophene based "double-cable" polymer with pendant anthraquinone functional groups: Preparation, spectroscopy and photovoltaic properties. Solar Energy Materials and Solar Cells.
- . Journal of Materials Chemistry, 21(3), 851-862.
- . J MATER CHEM, 21(35), 13649-13656.
- . J Phys Chem A, 114(44), 11920-11927.
- . APPL PHYS LETT, 97(15).
- . J Chem Phys, 133(11), 119901.
- . J Chem Phys, 133(4), 044504.
- . Journal of Applied Physics, 108(1), 014503-014503.
- . ACS Nano, 4(6), 3039-3044.
- . Journal of Physics and Chemistry of Solids, 71(3), 340-345.
- . PHYS REV B, 81(12).
- . Journal of Applied Polymer Science, 115(4), 2402-2408.
- The optical properties of hybrid organic-inorganic L3 nanocavities. J OPT SOC AM B, 27(2), 215-221.
- . The Journal of Physical Chemistry C, 114(1), 572-579.
- A one-dimensional photonic-crystal nanocavity incorporating a fluorescent molecular dye. APL: Organic Electronics and Photonics, 3(10).
- Stability of X-Ray Detectors Based on Organic Photovoltaic Devices. IEEE Journal on Selected Topics in Quantum Electronics.
- . SOFT MATTER, 6(17), 4128-4134.
- . J MATER CHEM, 20(33), 6990-6997.
- . Adv Mater, 22(22), 2444-2447.
- . MACROMOL RAPID COMM, 30(22), 1889-1892.
- . Langmuir, 25(18), 10746-10753.
- . ORG ELECTRON, 10(6), 1170-1173.
- . APPL PHYS LETT, 94(24).
- . Synthetic Metals, 159(11), 1112-1115.
- . THIN SOLID FILMS, 517(9), 2840-2844.
- . J Chem Phys, 130(4), 044903.
- . CHEM PHYS LETT, 468(1-3), 32-36.
- . ADV FUNCT MATER, 19(1), 157-163.
- . Journal of Applied Polymer Science, NA-NA.
- High-speed electroluminescence modulation of a conjugated-polymer light emitting diode. APL: Organic Electronics and Photonics, 2(6).
- From zero to 4.5% in six months: Experiences of developing an organic solar cell process. ACS National Meeting Book of Abstracts.
- . Proceedings of SPIE - The International Society for Optical Engineering, 7416.
- . APPL PHYS LETT, 93(21).
- . MACROMOL RAPID COMM, 29(22), 1804-1809.
- . Journal of Applied Polymer Science, 110(4), 2393-2398.
- . Optical Materials, 31(2), 320-327.
- . PHYS REV B, 78(4).
- . NEW J PHYS, 10.
- . PHYS REV B, 77(19).
- . J APPL PHYS, 103(9).
- . Journal of Applied Physics, 103(8), 084510-084510.
- . J PHYS-CONDENS MAT, 20(12).
- . ADV FUNCT MATER, 18(4), 600-606.
- . J NANOPHOTONICS, 2.
- . European Polymer Journal, 43(12), 4983-4994.
- . Opt Express, 15(22), 14299-14305.
- . ORG ELECTRON, 8(5), 621-624.
- . Applied Physics Letters, 91(6), 063509-063509.
- . MACROMOL RAPID COMM, 28(10), 1155-1160.
- . ORG ELECTRON, 8(2-3), 120-126.
- . European Polymer Journal, 43(3), 938-948.
- . Advanced Materials, 19(1), NA-NA.
- . ADV MATER, 19(1), 107-+.
- Nonlinear dynamics in zinc-porphyrin microcavities. Optics InfoBase Conference Papers.
- . Conference on Quantum Electronics and Laser Science (QELS) - Technical Digest Series.
- . PHYS REV B, 74(23).
- . CHEM MATER, 18(24), 5789-5797.
- . ADV MATER, 18(20), 2713-+.
- . PHYS REV B, 74(11).
- . ORG ELECTRON, 7(4), 222-228.
- . Advanced Materials, 18(6), NA-NA.
- . ADV MATER, 18(6), 742-+.
- . J APPL PHYS, 99(5).
- . ORG ELECTRON, 6(5-6), 221-228.
- . Nano Lett, 5(11), 2232-2237.
- . J PHYS-CONDENS MAT, 17(8), 1319-1328.
- . ORG ELECTRON, 6(1), 35-45.
- . Nano Lett, 5(1), 67-71.
- . Phys Rev Lett, 93(25), 257401.
- . APPL PHYS LETT, 85(24), 5848-5850.
- Understanding the origin of the 535 nm emission band in oxidized poly(9,9-dioctylfluorene): The essential role of inter-chain/intersegment interactions (vol 14, pg 765, 2004). ADV FUNCT MATER, 14(11), 1037-1037.
- . APPL PHYS LETT, 85(15), 3080-3082.
- . ADV FUNCT MATER, 14(8), 765-781.
- . APPL PHYS LETT, 84(24), 4890-4892.
- . ADV MATER, 16(3), 252-+.
- . APPL PHYS LETT, 83(26), 5377-5379.
- . Nat Mater, 2(9), 616-621.
- . Journal of Molecular Structure: THEOCHEM, 629(1-3), 251-261.
- . PHYS REV B, 67(19).
- . J APPL PHYS, 93(9), 5003-5007.
- . J Microsc, 209(Pt 3), 188-193.
- . PHYS REV B, 67(8).
- . Thin Films and Nanostructures, 31(C), 355-402.
- . APPL PHYS LETT, 81(19), 3519-3521.
- Microcavity polaritons in materials with weak intermolecular interaction. PHYS STATUS SOLIDI B, 234(1), 130-138.
- The effect of morphology on the temperature-dependent photoluminescence quantum efficiency of the conjugated polymer poly(9, 9-dioctylfluorene). J PHYS-CONDENS MAT, 14(42), 9975-9986.
- . APPL PHYS LETT, 80(22), 4088-4090.
- . PHYS REV B, 65(19).
- . Journal of Molecular Structure: THEOCHEM, 582(1-3), 159-169.
- Improving efficiency by balancing carrier transport in poly(9,9-dioctylfluorene) light-emitting diodes using tetraphenylporphyrin as a hole-trapping, emissive dopant. APPL PHYS LETT, 79(23), 3872-3874.
- . Chemical Physics, 272(2-3), 159-169.
- Enhanced performance of pulse driven small area polyfluorene light emitting diodes. APPL PHYS LETT, 79(2), 171-173.
- Opal photonic crystals infiltrated with chalcogenide glasses. APPL PHYS LETT, 78(26), 4094-4096.
- Completely polarized photoluminescence emission from a microcavity containing an aligned conjugated polymer. CHEM PHYS LETT, 341(3-4), 219-224.
- Origin of electrophosphorescence from a doped polymer light emitting diode. PHYS REV B, 63(23).
- . Journal of Molecular Structure: THEOCHEM, 542(1-3), 263-271.
- Raman scattering in strongly coupled organic semiconductor microcavities. PHYS REV B, 63(12).
- Ultrafast Forster transfer dynamics in tetraphenylporphyrin doped poly(9,9-dioctylfluorene). CHEM PHYS LETT, 335(1-2), 27-33.
- Photophysics of a poly(phenylenevinylene) with alternating meta-phenylene and para-phenylene rings. PHYS REV B, 62(23), 15718-15723.
- Spectral properties of resonant-cavity, polyfluorene light-emitting diodes. APPL PHYS LETT, 77(9), 1262-1264.
- . Science, 288(5471), 1620-1623.
- Efficient energy transfer from blue to red in tetraphenylporphyrin-doped poly(9,9-dioctylfluorene) light-emitting diodes. ADV MATER, 12(1), 58-+.
- Strong coupling in an organic metal-clad microcavity. Conference on Quantum Electronics and Laser Science (QELS) - Technical Digest Series, 79-80.
- Ultrafast Forster transfer in a highly fluorescent polymer blend. Conference on Lasers and Electro-Optics Europe - Technical Digest, 272.
- Time resolved photoluminescence of electroluminescent polymer blends and organic microstructures. Conference on Lasers and Electro-Optics Europe - Technical Digest, 366.
- Device degradation of polymer light emitting diodes studied by electroabsorption measurements. APPL PHYS LETT, 75(14), 2144-2146.
- An ultrafast spectroscopy study of stimulated emission in poly (9,9-dioctylfluorene) films and microcavities. APPL PHYS LETT, 74(19), 2767-2769.
- Room temperature polariton emission from strongly coupled organic semiconductor microcavities. PHYS REV LETT, 82(16), 3316-3319.
- Strong exciton-photon coupling in an organic semiconductor microcavity. NATURE, 395(6697), 53-55.
- Bulk limited conduction in electroluminescent polymer devices. J APPL PHYS, 84(12), 6737-6746.
- Direct determination of the exciton binding energy of conjugated polymers using a scanning tunneling microscope. PHYS REV LETT, 81(5), 1082-1085.
- Pixelated multicolor microcavity displays. IEEE J SEL TOP QUANT, 4(1), 113-118.
- Space-charge limited conduction with traps in poly(phenylene vinylene) light emitting diodes. J APPL PHYS, 82(12), 6326-6342.
- Electroluminescence from a soluble poly(p-phenylenevinylene) derivative generated using a scanning tunneling microscope. APPL PHYS LETT, 71(14), 2008-2010.
- Efficient multilayer electroluminescence devices with poly(m-phenylenevinylene-co-2,5-dioctyloxy-p-phenylenevinylene) as the emissive layer. J APPL PHYS, 82(5), 2662-2670.
- Mapping the confined optical field in a microcavity via the emission from a conjugated polymer. APPL PHYS LETT, 71(6), 744-746.
- . Microscopy and Microanalysis, 3(S2), 825-826.
- Electroluminescence in polymer films. NATURE, 386(6621), 135-135.
- Control of photoluminescence emission from a conjugated polymer using an optimised microcavity structure. CHEM PHYS LETT, 263(5), 655-660.
- Photoprocessed and micropatterned conjugated polymer LEDs. SYNTHETIC MET, 82(2), 141-148.
- Use of poly(phenyl quinoxaline) as an electron transport material in polymer light-emitting diodes. APPL PHYS LETT, 69(7), 881-883.
- Control of photoluminescence emission from a conjugated polymer using an optimised microcavity structure. IEE Colloquium (Digest)(267).
- ELECTROLUMINESCENCE FROM A CONJUGATED POLYMER MICROCAVITY STRUCTURE. APPL PHYS LETT, 67(10), 1355-1357.
- A critical analysis of the use of radiation inactivation to measure the mass of protein.. Radiat Res, 143(2), 181-186.
- . IEEE Transactions on Magnetics, 31(2), 938-949.
- . Advanced Materials for Optics and Electronics, 4(5), 381-386.
- . Advanced Materials for Optics and Electronics, 4(5), 349-354.
- . Molecular Crystals and Liquid Crystals Science and Technology. Section A. Molecular Crystals and Liquid Crystals, 236(1), 37-40.
- . Molecular Crystals and Liquid Crystals Science and Technology. Section A. Molecular Crystals and Liquid Crystals, 236(1), 59-64.
- . Scientific Reports, 14(1).
- . ACS Applied Energy Materials.
- . Journal of Physics: Energy.
- . Advanced Optical Materials.
- . Small.
- . Physical Chemistry Chemical Physics.
- . Journal of Materials Chemistry C.
- . Solar RRL.
- . Physical Review Letters, 131(18).
- . ACS Applied Materials & Interfaces.
- . Nature Communications, 14(1).
- . Advanced Optical Materials.
- . Advanced Materials.
- . Advanced Energy Materials, 2203468-2203468.
- . ACS Photonics.
- . ACS Applied Materials & Interfaces.
- . Advanced Science, 2200366-2200366.
- . ENERGY & ENVIRONMENTAL MATERIALS.
- . ChemSusChem.
- . ACS Applied Energy Materials.
- . RSC Advances, 5(123), 101607-101615.
- . Physical Review B, 91(20).
- . RSC Advances, 5(57), 46386-46394.
- . J. Mater. Chem. C, 2(41), 8700-8706.
- . RSC Adv., 4(81), 43142-43149.
- . Materials Science Forum, 730-732, 227-231.
- . Optics Letters, 38(2), 156.
- . Materials Science Forum, 714, 63-66.
- . Journal of Saudi Chemical Society.
- Ultrafast long-range energy transport via light-matter coupling in organic semiconductor films.
- On the origin of blueshifts in organic polariton condensates.
- . Advanced Science.
- . Energy and Environmental Science, 7(9), 2944-2950.
- . Journal of Materials Chemistry A.
- Nano-second exciton-polariton lasing in organic microcavities.
- Strong Exciton-Photon Coupling in Large Area MoSe$_2$ and WSe$_2$ Heterostructures Fabricated from Two-Dimensional Materials Grown by Chemical Vapor Deposition.
- . RSC Advances, 10(66), 40341-40350.
- . Chemistry of Materials.
- Untargeted Effects in Organic Exciton-Polariton Transient Spectroscopy: A Cautionary Tale.
Chapters
- , Organic and Hybrid Photonic Crystals (pp. 243-273). Springer International Publishing
- , Organic Solar Cells: Fundamentals, Devices, and Upscaling (pp. 317-366).
- Near-Field Microscopy and Lithography of Light Emitting Polymers, NANO-OPTICS AND NEAR-FIELD OPTICAL MICROSCOPY (pp. 93-107).
- , Electronic Excitations in Organic Nanostructures (pp. 355-402). Elsevier
- , Characterization of Polymer Blends (pp. 821-848). Wiley-VCH Verlag GmbH & Co. KGaA
Conference proceedings papers
- . Advances in Ultrafast Condensed Phase Physics IV, 7 April 2024 - 12 April 2024.
- . Advances in Ultrafast Condensed Phase Physics IV, 7 April 2024 - 12 April 2024.
- . Physical Chemistry of Semiconductor Materials and Interfaces XXII, 20 August 2023 - 25 August 2023.
- . Photonic Instrumentation Engineering X, 28 January 2023 - 3 February 2023.
- . Proceedings of the International Conference on Hybrid and Organic Photovoltaics
- . The International Conference on Ultrafast Phenomena (UP) 2022, 2022.
- . Nonlinear Optics and Applications XII, 19 April 2021 - 24 April 2021.
- (pp 34)
- . The 22nd International Conference on Ultrafast Phenomena 2020, 2020.
- . Physical Chemistry of Semiconductor Materials and Interfaces XVII, 19 August 2018 - 23 August 2018.
- . Metamaterials, Metadevices, and Metasystems 2017, 6 August 2017 - 10 August 2017.
- . Organic, Hybrid, and Perovskite Photovoltaics XVIII, 6 August 2017 - 10 August 2017.
- SECONDARY ELECTRON SPECTROSCOPY AND ENERGY SELECTIVE IMAGING FOR THE ENGINEERING OF CARBON BASED MATERIALS. RECENT TRENDS IN CHARGED PARTICLE OPTICS AND SURFACE PHYSICS INSTRUMENTATION (pp 58-59)
- . Journal of Physics: Conference Series, Vol. 644 (pp 012017-012017)
- . Organic Photovoltaics XVI
- . Light Manipulating Organic Materials and Devices II
- . Silicon Photonics IX
- Spectroscopy of strongly-coupled organic-semiconductor microcavities. Conference on Lasers and Electro-Optics Europe - Technical Digest, Vol. 2014-January
- . CLEO: 2014, 2014.
- . The 9th International Conference on Group IV Photonics (GFP), 29 August 2012 - 31 August 2012.
- Ultrafast dynamics of cavity polaritons in an organic semicondutor microcavity. Optics InfoBase Conference Papers
- . Microscopy and Microanalysis, Vol. 17(S2) (pp 1732-1733)
- . Radiotherapy and Oncology, Vol. 99 (pp S212-S213)
- Coherent phonons in cyanine dye monomers and J-aggregates. ULTRAFAST PHENOMENA XVI, Vol. 92 (pp 370-372)
- Temporal dynamics of polaritons in a strongly-coupled organic-semiconductor microcavity. ULTRAFAST PHENOMENA XVI, Vol. 92 (pp 283-285)
- . MATERIALS SCIENCE AND ENGINEERING B-ADVANCED FUNCTIONAL SOLID-STATE MATERIALS, Vol. 149(3) (pp 266-269)
- Organic-Based Micropillar Structure Fabrication by Advanced Focused Ion Beam Milling Techniques. MICROSCOPY OF SEMICONDUCTING MATERIALS 2007, Vol. 120 (pp 449-452)
- . SUPERLATTICES AND MICROSTRUCTURES, Vol. 41(5-6) (pp 289-292)
- Improving the light extraction efficiency of polymer LEDs using microcavities and photonic crystals - art. no. 665510. ORGANIC LIGHT EMITTING MATERIALS AND DEVICES XI, Vol. 6655 (pp 65510-65510)
- Third Harmonic Generation measurements on organic semiconductor films. Physics of Semiconductors, Pts A and B, Vol. 893 (pp 369-370)
- An organic two dimensional photonic crystal microcavity processed by focused ion beam milling. Microscopy of Semiconducting Materials, Vol. 107 (pp 427-431)
- . Physica Status Solidi C - Conferences and Critical Reviews, Vol. 2 , No 11, Vol. 2(11) (pp 3899-3902)
- . JOURNAL OF LUMINESCENCE, Vol. 110(4) (pp 354-358)
- . JOURNAL OF LUMINESCENCE, Vol. 110(4) (pp 347-353)
- . SYNTHETIC METALS, Vol. 137(1-3) (pp 1471-1472)
- Cavity polaritons in organic materials. ORGANIC NANOPHOTONICS, Vol. 100 (pp 291-315)
- Enhanced Raman scattering in a strongly coupled microcavity containing J-aggregates. SYNTHETIC METALS, Vol. 127(1-3) (pp 151-154)
- Balancing electron and hole currents in single layer poly(9,9-dioctylfluorene) light emitting diodes. ORGANIC LIGHT-EMITTING MATERIALS AND DEVICES V, Vol. 4464 (pp 211-222)
- Optical coupling of Frenkel excitons in organic semiconductor microcavities. SYNTHETIC METALS, Vol. 124(1) (pp 37-40)
- High performance blue light-emitting diodes based on conjugated polymer blends. SYNTHETIC METALS, Vol. 121(1-3) (pp 1729-1730)
- A study of the different structural phases of the polymer poly(9,9 '-dioctyl fluorene) using Raman spectroscopy. SYNTHETIC METALS, Vol. 116(1-3) (pp 217-221)
- Electrophosphoresence from a doped polymer light emitting diode. SYNTHETIC METALS, Vol. 116(1-3) (pp 379-383)
- Cavity mode polarisation splitting in organic semiconductor microcavities. SYNTHETIC METALS, Vol. 116(1-3) (pp 497-500)
- . Synthetic Metals, Vol. 111 (pp 377-379)
- Red-light-emitting diodes via efficient energy transfer from poly(9,9-dioctylfluorene) to tetraphenylporphyrin. SYNTHETIC METALS, Vol. 111 (pp 203-206)
- Influence of alkoxy substituents on the exciton binding energy of conjugated polymers. SYNTHETIC METALS, Vol. 111 (pp 527-530)
- Influence of film morphology on the vibrational spectra of dioctyl substituted polyfluorene (PFO). SYNTHETIC METALS, Vol. 111 (pp 607-610)
- High brightness conjugated polymer LEDs. SYNTHETIC METALS, Vol. 111 (pp 151-153)
- Bright and efficient blue and green light-emitting diodes based on conjugated polymer blends. SYNTHETIC METALS, Vol. 111 (pp 159-163)
- Exciton polaritons in single and coupled microcavities. JOURNAL OF LUMINESCENCE, Vol. 87-9 (pp 25-29)
- High brightness and efficiency green light-emitting diodes based on fluorene-containing conjugated polymers and associated blends. ORGANIC LIGHT-EMITTING MATERIALS AND DEVICES IV, Vol. 4105 (pp 390-404)
- Strong coupling in organic semiconductor microcavities based on J-aggregates. MULTIPHOTON AND LIGHT DRIVEN MULTIELECTRON PROCESSES IN ORGANICS: NEW PHENOMENA, MATERIALS AND APPLICATIONS, Vol. 79 (pp 357-370)
- Observation of strong exciton-photon coupling in semiconductor microcavities containing organic dyes and J-aggregates. OPTICAL MATERIALS, Vol. 12(2-3) (pp 243-247)
- Bright and efficient blue light-emitting diodes based on conjugated polymer blends. ORGANIC LIGHT-EMITTING MATERIALS AND DEVICES III, Vol. 3797 (pp 383-397)
- Application of fluorescence scanning near-field optical microscopy to the study of phase-separated conjugated polymers. ULTRAMICROSCOPY, Vol. 71(1-4) (pp 275-279)
- Conduction and trapping in electroluminescent polymer devices. ORGANIC LIGHT-EMITTING MATERIALS AND DEVICES II, Vol. 3476 (pp 98-110)
- Charge trapping in polymer diodes. OPTICAL MATERIALS, Vol. 9(1-4) (pp 114-119)
- Efficient LEDs with a conjugated co-polymer as the emissive layer. OPTICAL MATERIALS, Vol. 9(1-4) (pp 173-177)
- Charge trapping in polymer electroluminescent devices. ORGANIC LIGHT-EMITTING MATERIALS AND DEVICES, Vol. 3148 (pp 104-116)
- . Thin Solid Films, Vol. 284-285 (pp 644-647)
- Recent progress in polymers for electroluminescence: Microcavity devices and electron transport polymers. THIN SOLID FILMS, Vol. 273(1-2) (pp 39-47)
- Organic light-emitting diodes (LEDs) based on Langmuir-Blodgett films containing rare-earth complexes. SYNTHETIC METALS, Vol. 76(1-3) (pp 91-93)
- Characterization of the emission from a conjugated polymer microcavity. SYNTHETIC METALS, Vol. 76(1-3) (pp 129-132)
- Conjugated polymers for electroluminescence: Principles and prospects. PHOTOACTIVE ORGANIC MATERIALS, Vol. 9 (pp 293-312)
- . Organic Thin Films for Photonic Applications, 1995.
- OPTICAL SWITCHING AND AMPLIFICATION BASED ON THE ENZYME LUCIFERASE. MOLECULAR CRYSTALS AND LIQUID CRYSTALS SCIENCE AND TECHNOLOGY SECTION A-MOLECULAR CRYSTALS AND LIQUID CRYSTALS, Vol. 234 (pp 577-580)
- THE QUANTUM YIELD OF LUCIFERASE IS DEPENDENT ON ATP AND ENZYME CONCENTRATIONS. MOLECULAR CRYSTALS AND LIQUID CRYSTALS SCIENCE AND TECHNOLOGY SECTION A-MOLECULAR CRYSTALS AND LIQUID CRYSTALS, Vol. 234 (pp 599-604)
- . Proceedings of the nanoGe International Conference on Perovskite Solar Cells, Photonics and Optoelectronics, 24 February 2019 - 27 February 2019.
- . Conference Digest. 2000 Conference on Lasers and Electro-Optics Europe (Cat. No.00TH8505)
Datasets
Preprints
- Femtosecond switching of strong light-matter interactions in microcavities with two-dimensional semiconductors.
- , arXiv.
- Shaping potential landscape for organic polariton condensates in double-dye cavities, arXiv.
- Ultrafast optical control of polariton energy in an organic semiconductor microcavity, arXiv.
- Nonlinear interactions of dipolar excitons and polaritons in MoS2 bilayers.
- Untargeted Effects in Organic Exciton-Polariton Transient Spectroscopy: A Cautionary Tale, arXiv.
- Superabsorption in an organic microcavity: towards a quantum battery, arXiv.
- Strong Exciton-Photon Coupling in Large Area MoSe$_2$ and WSe$_2$ Heterostructures Fabricated from Two-Dimensional Materials Grown by Chemical Vapor Deposition, arXiv.
- Nano-second exciton-polariton lasing in organic microcavities, arXiv.
- Manipulating matter with strong coupling: harvesting triplet excitons in organic exciton microcavities, arXiv.
- Ionic-to-electronic current amplification in hybrid perovskite solar cells: ionically gated transistor-interface circuit model explains hysteresis and impedance of mixed conducting devices, arXiv.
- Generation of Anti-Stokes Fluorescence in a Strongly Coupled Organic Semiconductor Microcavity, arXiv.
- Strong Exciton-Photon Coupling in a Nanographene Filled Microcavity, arXiv.
- Polaritons in Living Systems: Modifying Energy Landscapes in Photosynthetic Organisms Using a Photonic Structure, arXiv.
- Electrically tunable organic-inorganic hybrid polaritons with monolayer WS2, arXiv.
- Mapping Morphological and Structural Properties of Lead Halide Perovskites by Scanning Nanofocus XRD, arXiv.
- Highly efficient optical filter based on vertically coupled Photonic crystal cavity and bus waveguide, arXiv.
- Non-radiative exciton energy transfer in hybrid organic-inorganic heterostructures, arXiv.
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- Research group
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PHY378/409 Physics in an Enterprise Culture PHY123 The Physics of Sustainable Energy PHY11006 First Year Laboratory
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Department administration
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- Year In Industry Tutor
- REF Impact Champion
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