0000000001085332

AUTHOR

M. Calbucci

showing 3 related works from this author

Low intrinsic carrier density LSMO/Alq3/AlOx/Co organic spintronic devices

2018

The understanding of spin injection and transport in organic spintronic devices is still incomplete, with some experiments showing magnetoresistance and others not detecting it. We have investigated the transport properties of a large number of tris-(8-hydroxyquinoline)aluminum-based organic spintronic devices with an electrical resistance greater than 5 MΩ that did not show magnetoresistance. Their transport properties could be described satisfactorily by known models for organic semiconductors. At high voltages (>2 V), the results followed the model of space charge limited current with a Poole-Frenkel mobility. At low voltages (∼0.1 V), that are those at which t…

Materials sciencePhysics and Astronomy (miscellaneous)MagnetoresistanceSpintronicsCondensed matter physicsVALVESSpin valve02 engineering and technology021001 nanoscience & nanotechnology01 natural sciencesSpace chargePoole–Frenkel effectTRANSPORTOrganic semiconductorINTERFACESPIN INJECTIONElectrical resistance and conductanceElectrical resistivity and conductivity0103 physical sciencesMAGNETORESISTANCEHETEROJUNCTIONfilms010306 general physics0210 nano-technologyTEMPERATURE
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Publisher's Note: “Low intrinsic carrier density LSMO/Alq3/AlOx/Co organic spintronic devices” [Appl. Phys. Lett. 112, 142401 (2018)]

2018

Materials scienceCharge-carrier densityPhysics and Astronomy (miscellaneous)SpintronicsCondensed matter physics0103 physical sciences02 engineering and technology021001 nanoscience & nanotechnology010306 general physics0210 nano-technology01 natural sciencesApplied Physics Letters
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Seed layer technique for high quality epitaxial manganite films

2016

We introduce an innovative approach to the simultaneous control of growth mode and magnetotransport properties of manganite thin films, based on an easy-to-implement film/substrate interface engineering. The deposition of a manganite seed layer and the optimization of the substrate temperature allows a persistent bi-dimensional epitaxy and robust ferromagnetic properties at the same time. Structural measurements confirm that in such interface-engineered films, the optimal properties are related to improved epitaxy. A new growth scenario is envisaged, compatible with a shift from heteroepitaxy towards pseudo-homoepitaxy. Relevant growth parameters such as formation energy, roughening tempera…

Materials scienceFerromagnetic material propertiesDielectrophoresisGeneral Physics and AstronomyMagnetic filmsNanotechnology02 engineering and technologySubstrate (electronics)Epitaxy01 natural sciencesNOPhysics and Astronomy (all)0103 physical sciencesThin film growthThin film010306 general physicsDeposition (law)business.industry021001 nanoscience & nanotechnologyManganitelcsh:QC1-999X-ray diffractionChemical stateOptoelectronics0210 nano-technologybusinessLayer (electronics)lcsh:PhysicsRegular ArticlesEpitaxyAIP Advances
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