The effect of intermediate layers on the internal electric field in organic semiconductor devices (original) (raw)

The effect of intermediate layers on the internal electric field in organic semiconductor devices

Christoph Lungenschmied

Proceedings of SPIE, 2006

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Internal electric field in organic-semiconductor-based photovoltaic devices

Christoph Lungenschmied

Applied Physics Letters, 2006

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Electrical Characterization Of Polymeric Charge Transport Layers

Irina Craciun

2011

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Probing electronic state charging in organic electronic devices using electroabsorption spectroscopy

John Ferraris

Synthetic Metals, 1996

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Effect of poly(3,4-ethylene dioxythiophene) on the built-in field in polymer light-emitting diodes probed by electroabsorption spectroscopy

Rusli Daik

Synthetic Metals, 2000

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Doping of poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate) films studied by means of electrochemical variable angle spectroscopic ellipsometry

Dusko Cakara

Thin Solid Films, 2018

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Electronic Properties of Interfaces between PCPDTBT and Prototypical Electrodes Studied by Photoemission Spectroscopy

Thorsten Kampen, Thomas Chassé, Heiko Peisert

ChemPhysChem, 2011

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Studies of Materials and Interfaces for Organic Electronics-Thesis

Dr Azhar Zaidi

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Title Mixed interlayers at the interface between PEDOT : PSS and conjugated polymers provide charge transport control Permalink

Adam Moulé

2015

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Microstructure-dependent electrochemical properties of chemical-vapor deposited poly(3,4-ethylenedioxythiophene) (PEDOT) films

sean arnold

Synthetic Metals, 2019

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Energy level alignment and morphology of interfaces between molecular and polymeric organic semiconductors

Jürgen P . Rabe

Organic Electronics, 2007

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Metal Residues in Semiconducting Polymers: Impact on the Performance of Organic Electronic Devices

Cyril Brochon

ACS Macro Letters, 2014

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Light-Induced Electroluminescence Patterning: Interface Energetics Modification at Semiconducting Polymer and Metal-Oxide Heterojunction in a Photodiode

Eh Salim

J. Phys. Chem. C, 2018

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Electronic structure at InP organic polymer layer interfaces

Noam Kinrot

Applied Physics Letters, 1997

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Comparative Study of the Electrochemical and the Optical Band Gap of Organic Semiconductors

Elif Arici

2002

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Poly(ethylene imine) Impurities Induce n-doping Reaction in Organic (Semi)Conductors

Slawomir Braun

Advanced Materials, 2014

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Full characterization of electronic transport properties in working polymer light-emitting diodes via impedance spectroscopy

Hiroyoshi Naito

Journal of Applied Physics

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Energetics at Doped Conjugated Polymer/Electrode Interfaces

Slawomir Braun, Mats Fahlman

Advanced Materials Interfaces, 2014

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Impedance Spectroscopy of p-Conjugated Organic Materials

Taehyoung Zyung

ETRI Journal, 2004

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Photoelectron spectroscopy study of the energy level alignment at polymer/electrode interfaces in light emitting devices

Jur W Wildeman

Current Applied Physics, 2001

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Electrical aspects of photovoltaic devices based on bi-layer organic semiconducting materials

Lucimara Roman

Microelectronics Journal, 2005

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Photoconductivity measurements of the electronic structure of organic solar cells

Katherine Song

Physical Review B, 2011

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Effect of Internal and External Electric Fields in Organic Semiconductor Systems: Experimental Studies in Frequency and Time Domain

Debkumar Rana

2020

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Solution-Based Electrical P-type Doping of Semiconducting Polymer Films Over a Limited Depth in High-Performance Organic Photovoltaic Devices

Vladimir Kolesov

2017

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Electrical properties of electrochemically doped organic semiconductors using light-emitting electrochemical cells

G. Gozzi

Journal of Solid State Electrochemistry, 2016

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The role of (photo) electrochemistry in the rational design of hybrid conducting polymer/semiconductor assemblies: From fundamental concepts to practical applications

K. Rajeshwar

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Electronic Processes at Organic− Organic Interfaces: Insight from Modeling and Implications for Opto-electronic Devices†

D. Beljonne

Chemistry of …, 2011

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Characterization of the Ambipolar Transport Properties of Polymer- Based Organic Photoconductor by Non-Steady-State Photo-EMF Technique

Aramis A. Sánchez J.

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Localized Charge Transfer in a Molecularly Doped Conducting Polymer

Wolfgang Eberhardt

Advanced Materials, 2007

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Electrochemically induced free solvent transfer in thin poly(3,4-ethylenedioxythiophene) films

Jose Garcia-jareno

Electrochimica Acta, 2015

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In situ electrochemical doping enhances the efficiency of polymer photovoltaic devices

Kung-hwa Wei

Journal of Materials Chemistry, 2011

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Determination of Interface-State Distributions in Polymer-Based Metal-Insulator-Semiconductor Capacitors by Impedance Spectroscopy

Hiroyoshi Naito

Applied sciences, 2018

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Mechanism of Carrier Photoexcitation in Semiconducting Polymers: The Role of Electron Photoemission in “Photoconductivity” Measurements

Daniel Moses

MRS Proceedings, 2001

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Photoinduced Charge Transfer across the Interface between Organic Molecular Crystals and Polymers

Vitaly Podzorov

Physical Review Letters, 2005

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Effect of Molecular Orientation on Photovoltaic Efficiency and Carrier Transport in a New Semiconducting Polymer

Iris Duyssens

Acta Physica Polonica A, 2008

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