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2·î22Æü(ÌÚ)15»þ¡Á¡¡Prof.¡¡Wolfgang Bruetting¡¡¡ÊUniversitaet Augsburg¡Ë †
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8·î7Æü¡Ê¿å¡Ë18:00~¡¡Ã´Åö¡§±º¾å¡¡Íµ´õ †
Charge carrier's trapping states in pentacene films studied by modulated photocurrent
S. Gorgolis, et al.; Journal of Applied Physics 113 123102 (2013)
7·î18Æü¡Ê¿å¡Ë16:30~¡¡Ã´Åö¡§µÜÆâ¡¡ÂóÌé †
Uniform and refreshable liquid electroluminescent device with a back side reservoir
Chang-Hoon Shim, et al.; Applied Physics Letters 101 113302 (2012)
7·î16Æü¡Ê²Ð¡Ë18:00~¡¡Ã´Åö¡§º´Æ£¡¡Í§ºÈ †
Contact De-electrification of Electrostatistically Charged Polymers
Siowling Soh, et al.; Journal of the American Chemical Society 134 20151-20159 (2012)
7·î8Æü¡Ê·î¡Ë18:30~¡¡Ã´Åö¡§Åļ¡¡½Ù¸÷ †
Decay process of a large surface potential of Alq3 films by heating
Norifumi Kajimoto, et al.; Journal of Applied Physics 100 053707 (2006)
7·î3Æü¡Ê¿å¡Ë16:30~¡¡Ã´Åö¡§Âçß·¡¡Í¤²ð †
Impact of electrode contamination on the ¦Á-NPD/Au hole injection barrier
A. Wan, et al.; Organic Electronics 6 47-54 (2005)
7·î1Æü¡Ê·î¡Ë18:30~¡¡Ã´Åö¡§¥¤¥à¡¡¥Ò¥ç¥ó¥¹ †
Probing interfacial charge accumulation in ITO/¦Á-NPD/Alq3/Al diodes under two electroluminescence operational modes by electric-field induced optical second-harmonic generation
Atsuo Sadakata, et al.; Journal of Applied Physics 112 083723 (2012)
6·î26Æü¡Ê¿å¡Ë16:30~¡¡Ã´Åö¡§Ãæ¸÷¡¡±É¿Î †
Small-molecule organic solar cells with improved stability
Q.L. Song, et al.; Chemical Physics Letters 416 42-46 (2005)
6·î24Æü¡Ê·î¡Ë18:30~¡¡Ã´Åö¡§ÊÆ»³¡¡ÆØ»Ö †
Energy level alignment at the interfaces in a multilayer organic light-emitting diode structure
S. Olthof, et al.; Physical Review B 79 245308 (2009)
6·î17Æü¡Ê·î¡Ë18:30~¡¡Ã´Åö¡§Åڼꡡ¹¨¼ù †
Wedging Transfer of Nanostructures
Gregory F. Schneider, et al.; Nano Letters 10 1912-1916 (2010)
6·î12Æü¡Ê¿å¡Ë16:30~¡¡Ã´Åö¡§ÉðÅÄ¡¡Í´´õ †
Photoabsorption and Photoelectron-yield Spectra of Polypeptides in the Vacuum-uv Region
S. Iwanami and N. Oda; Radiation Research 95 24-31 (1983)
6·î10Æü¡Ê·î¡Ë18:30~¡¡Ã´Åö¡§¹âÌÚ¡¡·ò¹Ô †
Planar and textured heterojunction organic photovoltaics based on chloroindium phthalocyanine (ClInPc?) versus titanyl phthalocyanine (TiOPc) donor layers
Weining Wang, et al.; Organic Electronics 12 383-393 (2011)
6·î5Æü¡Ê¿å¡Ë16:30~¡¡Ã´Åö¡§Luong Duy Xuan †
External Quantum Efficiency Above 100% in a Singlet-Exciton-Fission-Based Organic Photovoltaic Cell
Daniel N. Congreve, et al.; Science 340 334 (2013)
6·î3Æü¡Ê·î¡Ë18:30~¡¡Ã´Åö¡§ÀÐÌεÂÀ †
Transient electroluminescence in heavy metal complex-based phosphorescent organic light-emitting diodes
V.K. Chandra, B.P. Chandra; Organic Electronics 13 329-334 (2012)
5·î29Æü¡Ê¿å¡Ë16:30~¡¡Ã´Åö¡§»³ËÜ¡¡¹ÉÊ¿ †
Revealing Buried Interfaces to Understand the Origins of Threshold Voltage Shifts in Organic Field-Effect Transistors
Simon G.J. Mathijssen, et al.; Material Views 22 5105-5109 (2010)
5·î22Æü¡Ê¿å¡Ë16:30~¡¡Ã´Åö¡§»³ËÜ¡¡¿¿¿Í †
Gate-Tunable Large Negative Tunnel Magnetoresistance in Ni-C60-Ni Single Molecule Transistors
Kenji Yoshida, et al.; Nano Letters 13 481-485 (2013)
5·î15Æü¡Ê¿å¡Ë16:30~¡¡Ã´Åö¡§¶â¾ë¡¡Âó³¤ †
Optically Induced Inter- and Intrafacial Electron Transfer Probed by Two-Photon Photoemission: Electronic States of Sexithiophene on Au(111)
Erwan Varene, et al.; J. Phys. Chem. Lett. 2 252-256 (2011)
5·î8Æü¡Ê¿å¡Ë16:30~¡¡Ã´Åö¡§»³ËÜ¡¡¿¿Ç· †
Strong Pressure Effect in the Sublimation from Tetracene Single Crystals and Development of Surface Cleaning Technique for Organic Semiconductors
Manabu Ohtomo, et al.; Applied Physics Express 4 021601 (2011)
5·î1Æü¡Ê¿å¡Ë16:30~¡¡Ã´Åö¡§ÌîÀª¡¡ÂçÊå †
Mechanically controlled molecular orbital alignment in single molecule junctions
Christopher Bruot, et al.; Nature Nanotechnology 7 212 (2011)
4·î24Æü¡Ê¿å¡Ë16:30~¡¡Ã´Åö¡§¾®ÅÄ¡¡·Ã±¦ †
Charge carrier mobility and lifetime versus composition of conjugated polymer/fullerene bulk-heterojunction solar cells
G. Dennler, et al.; Organic Electronics 7 229-234 (2006)
4·î17Æü¡Ê¿å¡Ë16:30~¡¡Ã´Åö¡§¸ÅÊÝ¡¡¿¿¶µ †
A single-electron transistor made from a cadminium selenide nanocrystal
David L. Klein, et al.; Nature 389 699 (1997)
£²£°£±£²Ç¯ †
12·î5Æü(¿å)16:30¡Á¡¡Ã´Åö¡§¸ÅÊÝ¡¡¿¿¶µ †
Single-Photon Emission Behavior of Isolated CdSe?/ZnS Quantum Dots Interacting with the Localized Surface Plasmon Resonance of Silver Nanoparticles
Hiroyuki Naiki, et al.; J. Phys. Chem. C 115 23299 (2011)
11·î28Æü(¿å)16:30¡Á¡¡Ã´Åö¡§ÌîÀª¡¡ÂçÊå †
Measurement and Statistical Analysis of Single-Molecule Current-Voltage Characteristics, Trnsition Voltage Spectroscopy and Tunneling Barrier Hieght
Shaoyin Guo, et al.; J. Am. Chem. Soc. 133 19189 (2011)
11·î21Æü(¿å)16:30¡Á¡¡Ã´Åö¡§¾®ÅÄ¡¡·Ã±¦ †
Biomolecular Recombination Coefficient as a Sensitive Testing Parameter for Low-Mobility Solar-Cell Materials
A. Pivrikas, et al.; PRL 94 176806 (2005)
11·î14Æü(¿å)16:30¡Á¡¡Ã´Åö¡§Nguyen Thanh Luan †
Observation of long-range exciton diffusion in highly ordered organic semiconductors
H. Najafov, et al.; NATURE MATERIALS 9 938 (2010)
11·î7Æü(¿å)16:30¡Á¡¡Ã´Åö¡§»³ËÜ¡¡¹ÉÊ¿ †
Direct evaluation of low-field mobility and access resistance in pentacene field-effect transistors
Yang Xu, et al.; J. Appl. Phys. 107 114507 (2010)
10·î31Æü(¿å)16:30¡Á¡¡Ã´Åö¡§¹¾ß·¡¡Âó †
Material challenge for flexible organic devices
Jay Lewis; materialstoday 9 4 (2006)
10·î24Æü(¿å)16:30¡Á¡¡Ã´Åö¡§»³ËÜ¡¡¿¿¿Í †
Computational Investigation of DNA Detection Using Single-Electron Transistor-Based Nanopore
Yan-Dong Guo, et al.; J. Phys. Chem. C 116 21609 (2012)
10·î10Æü(¿å)16:30¡Á¡¡Ã´Åö¡§¶â¾ë¡¡Âó³¤ †
Atomic force microscopy baed, multiphoton, photoelectron emission imaging
E. Spanakis, et al.; Appl. Phys. Lett. 89 013110 (2006)
''Nanoscale Chemical Imaging by Scanning Tunneling Microscopy Assised by Synchrotron Radiation
Taichi Okuda, et al.; PRL 102 105503 (2009)
10·î3Æü(¿å)16:30¡Á¡¡Ã´Åö¡§Ä®ÅÄ¡¡¿¿°ì †
Exciton Dynamics at CuPc?/C60 Interfaces: Energy Dependence of Exciton Dissociation
G. J. Dutton, et al.; J. Phys. Chem. C 116 19173(2012)
7·î18Æü(¿å)18:00¡Á¡¡Ã´Åö¡§¶â¾ë¡¡Âó³¤ †
Structural Phase Contrast in Polycrystalline Organic Semiconductor Films Observed by Broadband Near-Field Optical Spectroscopy
Robert Pomraenke, et al.;Nano Lett 7 4-998(2007)
7·î11Æü(¿å)18:00¡Á¡¡Ã´Åö¡§»³ËÜ¡¡¿¿¿Í †
Logic Operations of Chemically Assembled Single-Electron Transistor
Kosuke Maeda, et al.;ACS NANO 6 3-2798(2012)
7·î4Æü(¿å)18:00¡Á¡¡Ã´Åö¡§ÅÄÃæ¡¡ÍÌï †
Determination of Quasi-Fermi Levels across Illumminated Organic Donor/Acceptor Heterojunctions by Kelvin Probe Force Microscopy
David J. Ellison, et al.;J. Am Chem. Soc 133 13802 (2011)
6·î27Æü(¿å)18:00¡Á¡¡Ã´Åö¡§»³ËÜ¡¡¿¿Ç· †
Growth of an Ordered Crystalline Organic Heterojunction
Richard R. Lunt, et al.;Adv. Mater 19 4229 (2007)
6·î20Æü(¿å)18:00¡Á¡¡Ã´Åö¡§»³ËÜ¡¡å¦Ê¿ †
Observation of electron behavior in ambipolar polymer-based light-emitting transistor by optical second harmonic generation
Yuki Ohshima, et al.;J. Appl. Phys 110 013715 (2011)
6·î6Æü(¿å)18:00¡Á¡¡Ã´Åö¡§ÌîÀª¡¡ÂçÊå †
Transition from Direct Tunneling to Field Emission in Metal-Molecule-Metal Junctions
Jeremy M. Beebe, et al.;PRL 97 026801 (2006)
5·î30Æü(¿å)18:00¡Á¡¡Ã´Åö¡§¸ÅÊÝ¡¡¿¿¶µ †
Electronluminescence from a Single-Nanocrystal Transistor
Mark S. Gudiksen, et al.;Nano Lett 5 11 (2005)
5·î23Æü(¿å)18:00¡Á¡¡Ã´Åö¡§¹¾ß·¡¡Âó †
Charge Transport in Proteins Probed by Resonant Photoemission
D. V. Vyalikh, et al.;PRL 102 098101 (2009)
5·î16Æü(¿å)18:00¡Á¡¡Ã´Åö¡§¾®ÅÄ¡¡·Ã±¦ †
Carrier Recombination in Orthorhombic Sulphur
F. K. Dolezalek and W. E. Spear;J. Phys. Chem. Solids 36 819-825 (1975)
5·î9Æü(¿å)18:00¡Á¡¡Ã´Åö¡§¥¤¥à¡¡¥Ò¥ç¥ó¥¹ †
Orientation of emissive dipoles in OLEDs:Quantitative in situ analysis
Michael Flämmich, et al.;Organic Electronics 11 1039-1046 (2010)
5·î2Æü(¿å)16:30¡Á¡¡Ã´Åö¡§µÜÆâ¡¡ÂóÌé †
Hybrid organic-inorganic liquid bistable memory devices
J. C. Ribierre, et al.;Organic Electronics 12 1800-1805 (2011)
4·î25Æü(¿å)18:00¡Á¡¡Ã´Åö¡§º´Æ£¡¡Í§ºÈ †
The Mosaic Surface Charge in Contact Electrification
H. T. Baytekin, et al.;Science 333 308-312 (2011)
4·î18Æü(¿å)17:00¡Á¡¡Ã´Åö¡§Âçß·¡¡Í¤²ð †
Horizontal Orientation of Disk-like Hole Transport Molecules and Their Application for Organic Light-Emitting Diodes Requiring a Lower Driving Voltage
Jun Y. Kim, et al.;J. Phys. Chem. C
4·î11Æü(¿å)16:30¡Á¡¡Ã´Åö¡§±º¾å¡¡Íµ´õ †
Electronic Structure and Geminate Pair Energetics at Organic-Organic Interfaces: The Case of Pentacene/C60 Heterojunctions
Stijn Verlaak, et al.;Adv. Funct. Mater. 19 3809-3814 (2009)
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2·î22Æü(¿å)16»þ¡¡Ã´Åö¡§»³ËÜ¡¡¿¿¿Í †
Optical Modulation of Molecular Conductance
Shreya Battacharrya, et al.;nano lette.. 11 2706 (2011)
1·î25Æü(¿å)16»þ¡¡Ã´Åö¡§ÅÄÃæ¡¡ÍÌï †
Spatial control of the recombination zone in an ambipolar light-emitting organic
Jane Zaumseil, et al.;nature materials. 5 (2006)
12·î28Æü(¿å)16»þ¡¡Ã´Åö¡§µÜºê¡¡¹ÔÀµ †
Exciplex Formations at the HTL\Alq3 Interface in an Organic Light-Emitting Diode:Lnfluence of the Electron-Hole Recombination Zone and Electric Field
Naoki Matsumoto, et al.;J. Phys. Chem. 114 4652 (2010)
12·î14Æü(¿å)16»þ¡¡Ã´Åö¡§ÆâÆ£¡¡Î¼À¸ †
Band Bending in Conjugated Polymer Layers
Ilja lange, et al.;Phys. Rev. Lette. 106 216402 (2011)
12·î7Æü(¿å)16»þ¡¡Ã´Åö¡§¥¥à¡¡¥Ò¥ç¥ó¥¸¥å¥ó †
Role of chemical reactions of arylamine hole transport materials in operational degradation of organic light-emitting diodes
Denis Y. Kondakov , et al.;J. appl. phys. 104 084520 (2008)
10·î26Æü(¿å)16»þ¡¡Ã´Åö¡§µÜÆâ¡¡ÂóÌé †
Photoemission of Holes from Metals into Anthracene
R. Williams , et al.;J. Chem. Phys. 46 6 (1967)
10·î12Æü(¿å)16»þ¡¡Ã´Åö¡§±º¾å¡¡Íµ´õ †
Organic-Organic Heteroepitaxy of Semiconductor Crystals:a-Quatethiophene on Rubrene
M. Campione , et al.;Chem. Mater. 21 4859-4867 (2009)
10·î5Æü(¿å)16»þ¡¡Ã´Åö¡§Âçß·¡¡Í´²ð †
Orientation-dependent ionization energies and interface dipoles in orderd molecular assemblies
S. duhm , et al.; nature materials 7 4 326-332 2008
7·î6Æü(¿å)16»þ¡¡Ã´Åö¡§º´Æ£¡¡Í§ºÈ [#me7b4403] †
Photoelectric Emission and Contact Charging of Some Synthetic High Polymers
Y. Murata,et al., Jap. J. Appl. Phys. 18 2 1979
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Y. Murata, Jap. J. Appl. Phys. 18 1 1979
6·î15Æü(¿å)16»þ¡¡Ã´Åö¡§»³²¼¡¡¹ä †
Concerted Emission and Local Potentiometry of Light-Emitting Electrochemical Cells
Deanna Rodovsky , et al.; acs nano 4 5 2673 2010
5·î11Æü(¿å)16»þ¡¡Ã´Åö¡§Md. Mijanur Rahman †
Carrier Mobility of organic semiconductors based on current-voltage characteristice
Z. B. Wang, et al.; J. Appl. Phys. 107 034506 2010
4·î27Æü(¿å)16»þ¡¡Ã´Åö¡§»³ÅÄ¡¡ÂÀµª †
Surface Potential Mapping of SAM-Ffunctionalized Organic Semiconductors by Kelvin Probe Force Microscopy
David J. Ellison , et al.; Adv. Mater.. B 23 502 2011
4·î20Æü(¿å)16»þ¡¡Ã´Åö¡§ÅÄÃæ¡¡ÍÌï †
Transient photoconductivity in polymer bulk heterojunction solar cells: Competition between sweep-out andd recombination
Sarah R. Cowan , et al.; Phys. Rev. B 83 035205-1 2011
4·î13Æü(¿å)16»þ¡¡Ã´Åö¡§Ä®ÅÄ¡¡¿¿°ì †
Reversible Bound Formation in a Gold-Atom-Organic-Molecule Complex as a molecular Switch
Fabian Moha , et al.; Phys. Rev. Lett. 105 266102-41 2010
2·î02Æü(¿å)16»þ¡¡Ã´Åö¡§Md. Mijanur Rahman †
Molecular Semiconductors in Organic Photovoltaic Cells
Alexander W, Hains , et al.; Chem. Rev.. xx xxxx xxxx
1·î19Æü(¿å)16»þ¡¡Ã´Åö¡§Åļ¡¡½Ù¸÷ †
Studied of degradation mechanism of organic light-emitting diodes based on tris(8-quinolinolate9 aluminum Alq and 2-tert-butyl-9,10,-di(2-naphthyl)anthracene TBADN
Viktor V. Jarikov , et al.; J. App. Phys. 105 034905-1 2009
1·î12Æü(¿å)16»þ¡¡Ã´Åö¡§»³²¼¡¡¹ä †
Improvement of Electroluminecence Performance of Organic Lighrt Emitting Diodes with a Liquid Emitting Layer by Introduction of Electrolyte and a Hole-bloking layer
Shuzo Hirata , et al.; adv. mater 5 1 2011
£²£°£±£°Ç¯ †
12·î15Æü(¿å)16»þ¡¡Ã´Åö¡§»³ËÜ¡¡¿¿¿Í †
Simultamepus Deposition of Metallic Bundles of Single-walled Carbon Nanotube Using Ac-dielectrophoresis
R. Krupke , et al.; NANO LETTERS , 3 1019-1023 2003
12·î01Æü(¿å)16»þ¡¡Ã´Åö¡§µÜºê¡¡¹ÔÀµ †
Singel carrier deviced with electrical deped layers for the characterization of charge-carrier transport in organic thin-films
Matthias Cchober , et al.; App. Phys. Lett. , 97 013303-1 2010
11·î24Æü(¿å)16»þ¡¡Ã´Åö¡§»³ÅÄ¡¡ÂÀµª †
Ion Gel-gated Polymer Thin-Film Transistors:Operating Mechanism and Charactarization of Gate Dilect Capatitance, Switing Speed, and Stability
Jiyoul Lee , et al.; J. Phys. Chemi. C , 113 8972-8981 2009
10·î27Æü(¿å)16»þ¡¡Ã´Åö¡§¾®Àî¡¡¾°µª †
Electron transport in rubrene single-crystal transistors
Satria Zulkarnaen Bisri , et al.; APPLYDE PHYSICS LETTERS , 96 183304 2010
10·î13Æü(¿å)16»þ¡¡Ã´Åö¡§ÅÄÃæ¡¡ÍÌï †
Interface trap level in top-contact pentacene thin-film transistors evaluated by displacement current measurement
S. Suzuki , et al.; Organic Electronics , 11 (2010) 594-598
10·î6Æü(¿å)16»þ¡¡Ã´Åö¡§Ä®ÅÄ¡¡¿¿°ì †
Charge Transport in Organic Crystals: Role of Disorder and Topological Connectivity
T. Vehoff , et al.; J. AM. CHEM. SOC. , 132 (2010) 11702-11708
7·î14Æü(¿å)16»þ¡¡Ã´Åö¡§Åļ¡¡½Ù¸÷ †
Deep-Level Optical Spectroscopy Investigation of Degradation Phenomena inTris(8-hydroxyquinoline) Aluminum-Based Organic Light-Emitting Diodes
Y. Nakano'''; Applied Physics Express , 2 (2009) 092103
6·î23Æü(¿å)16»þ¡¡Ã´Åö¡§»³²¼¡¡¹ä †
Organic light-emitting diode with liquid emitting layer
D. Xu and C. Adachi , et al.; APPLIED PHYSICS LETTERS , 95 (2009) 053304
6·î16Æü(¿å)16»þ¡¡Ã´Åö¡§»³ËÜ¡¡¿¿¿Í †
Controlled fabrication of nanogaps in ambient environment for molecular electronics
Strachan , et al.; APPLIED PHYSICS LETTERS , 86 (2005) 043109
6·î9Æü(¿å)16»þ¡¡Ã´Åö¡§¶â¾ë¡¡Âó³¤ †
Surface morphologies of anthracene single crystals grown from vapor phase
S. jo , et al.; Applied Surface Science , 252 (2006) 3514-3519
6·î2Æü(¿å)16»þ¡¡Ã´Åö¡§¾®Àî¡¡¾°µ †
Nucleation on the substrate surfaces during liquid flux-mediated vacuum deposition of rubrene
t. Shimada , et al.; Journal of Crystal Growth , 311 (2008) 163-166
5·î19Æü(¿å)16»þ¡¡Ã´Åö¡§»³ÅÄ¡¡ÂÀµª †
Comparison of the Mobility-Carrier Density Relation in Polymer and Single-Crystal Organic Transistors Employing Vacuum and Liquid Gate Dielectrics
C. D. Frisbie , et al.; ADVANCED MATERIALS , 21 (2009) 2174-2179
5·î10Æü(¿å)16»þ¡¡Ã´Åö¡§µÜºê¡¡¹ÔÀµ †
Investigation of defects in organic semiconductors by change based Deep Level Transient Spectroscopy (Q-DLTS)
T. P. Nguyen , et al.; Phys. Status Solidi C , 6 (2009) No. 8
4·î28Æü(¿å)16»þ¡¡Ã´Åö¡§Ä®ÅÄ¡¡¿¿°ì †
Sub-Å Resolution Electron Density Analysis of the Surface of Organic Rubrene Crystals
Y ,Wakabayashi et al.; PHYSICAL REVIEW LETTERS , 104 066103(2010)
4·î14Æü(¿å)16»þ¡¡Ã´Åö¡§ÅÄÃæ¡¡ÍÌï †
Simultaneous Measurements of Drain-source Current and Carrier Injection Properties of Top-Contact Pentacene Thin-Film Transistors
Y. Majima , et al.; Japanese Journal of Applied Physics , 46 (2007) No. 1
1·î6Æü(¿å)16»þ¡¡Ã´Åö¡§¾®Àî¡¡¾°µ †
Time-of-Fright Measurement of Lateral Carrier Mobility in Organic Thin Films
M. Kitamura , et al.; Japanese Journal of Applied Physics , 43 (2004) No. 4B
£²£°£°£¹Ç¯ †
12·î16Æü(¿å)16»þ¡¡Ã´Åö¡§»³ÅÄ¡¡ÂÀµª †
High-performance organic field-effect transistors with binary ionic liquids
S. Ono , et al.; Organic Electronics , 10 (2009) 1579-1582
12·î9Æü(¿å)16»þ¡¡Ã´Åö¡§¾åÅÄ¡¡ÆÆ»Ë †
Modeling Disorder in the Crystal Structure of the ¦Á Polymorph of Alq3
M. Rajeswaran , et al.; Chemical Crystallography , (2009) 1-6
11·î25Æü(¿å)16»þ¡¡Ã´Åö¡§µÜºê¡¡¹ÔÀµ †
Correlation of lifetime and recombination zone in green phosphorescent organic light-emitting diodes
K.S. Yook , et al.; APPLIED PHYSICS LETTERS , 94 (2009) 093501
11·î11Æü(¿å)16»þ¡¡Ã´Åö¡§¾®Àî¡¡¾°µ †
Non-destructive probing of the anisotropy of field-effect mobility in the rubrene single crystal
M.-M. Ling , et al.; Synthetic Metals , 157 (2007) 257-260
11·î4Æü(¿å)16»þ¡¡Ã´Åö¡§Íû¡¡¸ù°Î †
Charge trapping in organic transistor memories:On the role of electrons and holes
M. Debucquoy , et al.; Organic Electronics , 10 (2009) 1252-1258
10·î7Æü(¿å)16»þ¡¡Ã´Åö¡§ÅÄÃæ¡¡ÍÌï †
Hole trap related hysteresis in pentacene field-effect transistors
C. Ucurum , et al.; APPLIED PHYSICS , 104 (2008) 084501
7·î29Æü(¿å)16»þ¡¡Ã´Åö¡§Ä®ÅÄ¡¡¿¿°ì †
Determination of spin injection and transport in a ferromagnet/organic semiconductor heterojunction by two-photon photoemission
M. Cinchetti , et al.; nature materials , 8 (2009) 115
7·î16Æü(¿å)16»þ¡¡Ã´Åö¡§½®±Û¡¡Î¼Çî †
High-Performance Organic Single-Crystal Transistors on Flexible Substrates
A. Briseno , et al.; Advanced materials , 18 (2006) 2320
7·î1Æü(¿å)16»þ¡¡Ã´Åö¡§»³ÅÄ¡¡ÂÀµª †
A comparative study of organic single-crystal transistors gated with various ionic-liquid electrolytes
S. Ono , et al.; APPLIED PHYSICS LETTERS , 94 (2009) 063301
6·î24Æü(¿å)16»þ¡¡Ã´Åö¡§µÜºê¡¡¹ÔÀµ †
Photoinduced reduction and pattern preservation of giant surface potential on tris(8-hydroxyquinolinato) aluminum(??¡¡thin films
K. Ozaka , et al.; APPLIED PHYSICS LETTERS , 93 (2008) 263304
6·î10Æü(¿å)16»þ¡¡Ã´Åö¡§µ×ÊÝ¡¡ÂîÌé †
Organic Field-Effect Transistors
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6·î3Æü(¿å)16»þ¡¡Ã´Åö¡§Íû¡¡¸ù°Î †
Organic Non-Volatile Memory Based on Pentacene Field-Effect Transistors Using a Polymeric Gate Electret
K-J Baeg , et al.; Advanced materials , 18 (2006) 3179-3183.
5·î20Æü(¿å)16»þ¡¡Ã´Åö¡§¾®Àî¡¡¾°µ †
Analysis of time-of-flight transient photocurrent in organic semiconductors with coplanar-blocking-electrodes configuration
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4·î22Æü(¿å)16»þ¡¡Ã´Åö¡§ÅÄÃæ¡¡ÍÌï †
Charge injection process in organic field-effect transistors
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1·î22Æü(ÌÚ)13»þ¡¡Ã´Åö¡§Ä®ÅÄ¡¡¿¿°ì †
Band alignment at metal/organic and metal/oxide/organic interfaces
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