Valeria Ferrari
University of California, Berkeley
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Publication
Featured researches published by Valeria Ferrari.
Nature | 2007
Luis E. Hueso; J. M. Pruneda; Valeria Ferrari; Gavin Burnell; Jose P. Valdes-Herrera; B. D. Simons; Peter B. Littlewood; Emilio Artacho; Albert Fert; N. D. Mathur
Spin electronics (spintronics) exploits the magnetic nature of electrons, and this principle is commercially applied in, for example, the spin valves of disk-drive read heads. There is currently widespread interest in developing new types of spintronic devices based on industrially relevant semiconductors, in which a spin-polarized current flows through a lateral channel between a spin-polarized source and drain. However, the transformation of spin information into large electrical signals is limited by spin relaxation, so that the magnetoresistive signals are below 1% (ref. 2). Here we report large magnetoresistance effects (61% at 5 K), which correspond to large output signals (65 mV), in devices where the non-magnetic channel is a multiwall carbon nanotube that spans a 1.5 μm gap between epitaxial electrodes of the highly spin polarized manganite La0.7Sr0.3MnO3. This spintronic system combines a number of favourable properties that enable this performance; the long spin lifetime in nanotubes due to the small spin–orbit coupling of carbon; the high Fermi velocity in nanotubes that limits the carrier dwell time; the high spin polarization in the manganite electrodes, which remains high right up to the manganite–nanotube interface; and the resistance of the interfacial barrier for spin injection. We support these conclusions regarding the interface using density functional theory calculations. The success of our experiments with such chemically and geometrically different materials should inspire new avenues in materials selection for future spintronics applications.
Physical Review Letters | 2007
J. M. Pruneda; Valeria Ferrari; R. Rurali; Peter B. Littlewood; Nicola A. Spaldin; Emilio Artacho
We present the structure of the fully relaxed (001) surface of the half-metallic manganite La0.7Sr0.3MnO3, calculated using density functional theory. Two relevant ferroelastic order parameters are identified and characterized. The known tilting of the oxygen octahedra, which is present in the bulk phase, decreases towards the surface. A ferrodistortive Mn off-centering, triggered by the surface and not reported before, decays monotonically into the bulk. This distortion affects neither the half-metallicity nor the zero-temperature magnetization, but does change the effective spin-spin interactions, and thus the temperature dependence of the magnetic properties.
Physical Review B | 2014
Gustavo E. Murgida; Valeria Ferrari; M. Verónica Ganduglia-Pirovano; Ana Maria Llois
Journal of Physical Chemistry C | 2017
M. Verónica Ganduglia-Pirovano; Gustavo E. Murgida; Valeria Ferrari; Ana Maria Llois
Physical Review B | 2013
Abhijit Chinchore; Kangkang Wang; Meng Shi; Andrada Oana Mandru; Yinghao Liu; Muhammad B. Haider; Arthur R. Smith; Valeria Ferrari; Maria Andrea Barral; Pablo Ordejón
Journal of Physical Chemistry C | 2017
Joaquín Sacanell; Joaquín Hernández Sánchez; Adrián Ezequiel Rubio López; Hernán Martinelli; Jimena Siepe; Ana Gabriela Leyva; Valeria Ferrari; Dilson Juan; Miguel Pruneda; Augusto Mejía Gómez; Diego G. Lamas
ECS Transactions | 2017
Joaquín Sacanell; Joaquín Hernández Sánchez; Adrián Ezequiel Rubio López; Hernán Martinelli; Jimena Siepe; Ana Gabriela Leyva; Valeria Ferrari; Miguel Pruneda; Dilson Juan; Diego G. Lamas
Physical Review B | 2015
C. Helman; Valeria Ferrari; Ana Maria Llois
Bulletin of the American Physical Society | 2012
Abhijit Chinchore; Meng Shi; Wenzhi Lin; Kangkang Wang; Yianghao Liu; Arthur R. Smith; Valeria Ferrari; Andrea Barral; Ana Maria Llois
Bulletin of the American Physical Society | 2007
Miguel Pruneda; Valeria Ferrari; Peter B. Littlewood; Emilio Artacho