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Beschreibung
Our R&D work is focused towards the development of novel materials for organic solar cells applications along with the development of novel processes (cost effective and eco-friendly) for the synthesis of existing and modified materials for cheaper organic photovoltaic technology. Our special focus is also on development of graphene based interfacial layer for large area flexible organic electronics. We have introduced novel methodology for bulk synthesis of highly conducting graphene oxide and functionalized them with fullerene molecules to study their photophysical properties. Our Group is also involved in preparation of several small molecule based interfacial materials for better charge collection. We have experimentally observed microwave induced photovoltaic Shubnikov dee Hass Oscillations in highly oriented pyrolytic graphite (HOPG) Hall bar. These photovoltaic SdH oscillations are very sensitive to microwave power and frequency. High microwave power oscillations are exactly same as longitudinal resistance oscillations with Pi/2 phase shift. These results are very useful in future technology in photovoltaic devices.
Our R&D work is focused towards the development of novel materials for organic solar cells applications along with the development of novel processes (cost effective and eco-friendly) for the synthesis of existing and modified materials for cheaper organic photovoltaic technology. Our special focus is also on development of graphene based interfacial layer for large area flexible organic electronics. We have introduced novel methodology for bulk synthesis of highly conducting graphene oxide and functionalized them with fullerene molecules to study their photophysical properties. Our Group is also involved in preparation of several small molecule based interfacial materials for better charge collection. We have experimentally observed microwave induced photovoltaic Shubnikov dee Hass Oscillations in highly oriented pyrolytic graphite (HOPG) Hall bar. These photovoltaic SdH oscillations are very sensitive to microwave power and frequency. High microwave power oscillations are exactly same as longitudinal resistance oscillations with Pi/2 phase shift. These results are very useful in future technology in photovoltaic devices.
Über den Autor
Rachana Kumar (Scientist and Assistant Professor-AcSIR) is working in the area of development of high efficiency and stable excitonic solar cells.Pramod Kumar (Assistant Professor, IIIT Allahabad) is an experimental physicist and working on probing the Microwave induced Quantum Hall effect in truly 2D graphene, graphite and topological systems.
Details
Erscheinungsjahr: 2016
Fachbereich: Allgemeines
Genre: Mathematik, Medizin, Naturwissenschaften, Technik
Rubrik: Naturwissenschaften & Technik
Medium: Taschenbuch
Inhalt: 84 S.
ISBN-13: 9783330002869
ISBN-10: 3330002867
Sprache: Englisch
Einband: Kartoniert / Broschiert
Autor: Kumar, Pramod
Kumar, Rachana
Hersteller: LAP LAMBERT Academic Publishing
Verantwortliche Person für die EU: preigu GmbH & Co. KG, Lengericher Landstr. 19, D-49078 Osnabrück, mail@preigu.de
Maße: 220 x 150 x 6 mm
Von/Mit: Pramod Kumar (u. a.)
Erscheinungsdatum: 05.11.2016
Gewicht: 0,143 kg
Artikel-ID: 107680351

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