Herein is described a multidisciplinary approach to understand the per- formance limitations of small molecule organic light emitting transistors (OLETs) based on a layered architecture, an innovative architecture poten- tially competitive with the state of the art and more flexible for spectral emis- sion control. The processes of charge injection and field-effect transport at metal/organic and organic/organic interfaces are analysed using microscopic and spectroscopic techniques in coordination. Atomic force microscopy and ultrasonic force microscopy are employed to characterize the interface mor- phology and the initial growth stages of organic films where charge transport actually occurs. X-ray diffraction and near edge X-ray dichroic absorption with linearly polarised light allow to determine the unit cell packing and the molecular orientation at the active organic interfaces, as well as the amount of non-ordered domains. Moreover, chemical reactivity at the interfaces are measured by X-ray photoelectron spectroscopy. It is found that a strong reac- tion occurs at the metal-organic interfaces, with molecular fragmentation. Additionally, the transport properties strongly depend on the nature of the materials forming the organic stack. Specifically, amorphous conjugated films as bottom layers can promote an increased molecular disorder in the upper active layer, with a concomitant deterioration of the conduction properties.

Interface Functionalities in Multilayer Stack Organic Light Emitting Transistors (OLETs) / Capelli, R.; Dinelli, F.; Gazzano, M.; D’Alpaos, R.; Stefani, A.; Generali, G.; Riva, M.; Montecchi, Monica; Giglia, A.; Pasquali, Luca. - In: ADVANCED FUNCTIONAL MATERIALS. - ISSN 1616-301X. - STAMPA. - 24:(2014), pp. 5603-5613. [10.1002/adfm.201400877]

Interface Functionalities in Multilayer Stack Organic Light Emitting Transistors (OLETs)

R. Capelli;MONTECCHI, Monica;PASQUALI, Luca
2014

Abstract

Herein is described a multidisciplinary approach to understand the per- formance limitations of small molecule organic light emitting transistors (OLETs) based on a layered architecture, an innovative architecture poten- tially competitive with the state of the art and more flexible for spectral emis- sion control. The processes of charge injection and field-effect transport at metal/organic and organic/organic interfaces are analysed using microscopic and spectroscopic techniques in coordination. Atomic force microscopy and ultrasonic force microscopy are employed to characterize the interface mor- phology and the initial growth stages of organic films where charge transport actually occurs. X-ray diffraction and near edge X-ray dichroic absorption with linearly polarised light allow to determine the unit cell packing and the molecular orientation at the active organic interfaces, as well as the amount of non-ordered domains. Moreover, chemical reactivity at the interfaces are measured by X-ray photoelectron spectroscopy. It is found that a strong reac- tion occurs at the metal-organic interfaces, with molecular fragmentation. Additionally, the transport properties strongly depend on the nature of the materials forming the organic stack. Specifically, amorphous conjugated films as bottom layers can promote an increased molecular disorder in the upper active layer, with a concomitant deterioration of the conduction properties.
2014
24
5603
5613
Interface Functionalities in Multilayer Stack Organic Light Emitting Transistors (OLETs) / Capelli, R.; Dinelli, F.; Gazzano, M.; D’Alpaos, R.; Stefani, A.; Generali, G.; Riva, M.; Montecchi, Monica; Giglia, A.; Pasquali, Luca. - In: ADVANCED FUNCTIONAL MATERIALS. - ISSN 1616-301X. - STAMPA. - 24:(2014), pp. 5603-5613. [10.1002/adfm.201400877]
Capelli, R.; Dinelli, F.; Gazzano, M.; D’Alpaos, R.; Stefani, A.; Generali, G.; Riva, M.; Montecchi, Monica; Giglia, A.; Pasquali, Luca
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11380/1017718
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