Education:• 1999 Doctoral degree in Physics obtained at the Physics Department, University of Genova PhD thesis title: “STM study of nanostructures induced by ion sputtering on noble metals”.• 1994 University degree in Physics achieved at the Physics Department, University of Genova. Final mark: 110/110 cum laudeDiploma thesis title: “A project for a new method of EELS spectroscopy”.• 1988 High school at the Liceo Scientifico G. P. Vieusseux in Imperia. Final mark: 60/60.Research career plan:• 2016 – present MER: Ecole Polytechnique Fédérale de Lausanne (EPFL) in the group of Prof. Harald Brune• 2003 – 2016: 1er. Assistant: Ecole Polytechnique Fédérale de Lausanne (EPFL) in the group of Prof. Harald Brune• 2000-2003: Assistant: Ecole Polytechnique Fédérale de Lausanne (EPFL) under the direction of Prof. Harald Brune• 1999-2000: Research associate: Max-Planck-Institut of Stuttgart under the direction of Prof. Klaus KernMiscellaneous of professional activities:a) Review panel• Member of the Elettra proposal review panel• Member of the committee of the EDPY doctoral school in Physics at the EPFLb) Co-worker in the building of the X-Treme beamline:c) Referee for scientific journals:• Nat. Commun., Phys. Rev. Lett., Phys. Rev. B, J. Appl. Phys., Surf. Sci., J. Magn. Magn. Mater.Funding recorda) Funding awarded• Quantum Properties of Nanostructures at Surfaces, FNS 200020-157081/1;(01/10/2014 – 31/09/2017); total amount attributed: 832'558 CHF; co-applicant• Controlling magnetic anisotropy by interfacial coupling, FNS 200021_146715/1;(01/01/2014 – 31/12/2016); total amount attributed: 367'800 CHF; co-applicant• Self-assembled bi-metallic magnetic pillar superlattices with enhanced blocking temperature, SER C10.0135; (01/08/2011 – 01/08/2013); total amount attributed: 170'000 CHF; co-applicant• Magnetic and Catalytic Properties of Surface Supported Metallic Nanostructures, FNS 200020-120493/1; (01/04/2008 – 31/03/2010); total amount attributed: 402'669 CHF; co-applicant• Magnetic and Catalytic Properties of Surface Supported Metallic Nanostructures, FNS 200020-112322/1; (01/04/2006 – 31/03/2008); total amount attributed: 347'633 CHF; co-applicantb) Approved proposals for the allocation of beamtimeSwiss Light Source (SLS):main proposer: 9co-proposer: 4Elettra:main proposer: 5co-proposer: 1European Synchrotron Radiation Facility (ESRF):main proposer: 2co-proposer: 11Student supervisor• Co-director of PhD thesis: 4 PhD students
Dimitris Mousadakos: Seeking the smallest room temperature magnets; (in progress)
Romana Baltic: Controlling single atom magnetic anisotropy by interfacial coupling; (in progress)
Alberto Cavallin: Growth and magnetism of nanostructures investigated by STM, MOKE, and XMCD; (Oct. 2013), Thèse N°5941
Sergio Vlaic: Magnetism and atomic scale structure of bimetallic nanostructures at surfaces; (Dec. 2012), Thèse N° 5625
• Supervisor of PhD thesis (without co-direction): 4 PhD students
Anne Lehnert: Magnetism of individual adatoms and of epitaxial monolayers; (Jun. 2009), Thèse N° 4411
Geraud Moulas: Growth and magnetism of 2D bimetallic nanostructures; (Dec. 2008), Thèse N° 4231
Philipp Buluschek: Submonolayer growth of cobalt on metallic and insulating surfaces studied by scanning tunneling microscopy and kinetic Monte-Carlo simulations; (Nov. 2007), Thèse N° 3944
Nicolas Weiss: Propriétés magnétiques de nanostructures de Co adsorbées; (Apr. 2004), Thèse N° 2980
• Supervisor of Master thesis: 6 students• Supervisor of semester projects: 9 students• PhD thesis referee: 2 students
Klaus Kern is Professor of Physics at EPFL and Director and Scientific Member at the Max-Planck-Institute for Solid State Research in Stuttgart, Germany. He also is Honorary Professor at the University of Konstanz, Germany. His present research interests are in nanoscale science, quantum technology and in microscopy at the atomic limits of space and time. He holds a chemistry degree and PhD from the University of Bonn and a honorary doctors degree from the University of Aalborg. After his doctoral studies he was staff scientist at the Research Center Jülich and visiting scientist at Bell Laboratories, Murray Hill before joining the Faculty of EPFL in 1991 and the Max-Planck-Society in 1998. Professor Kern has authored and coauthored close to 700 scientific publications, which have received nearly 60‘000 citations. He has served frequently on advisory committees to universities, professional societies and institutions and has received numerous scientific awards and honors, including the 2008 Gottfried-Wilhelm-Leibniz Prize and the 2016 Van‘t Hoff Prize. Prof. Kern has also educated a large number of leading scientists in nanoscale physics and chemistry. During the past twenty-five years he has supervised one hundred PhD students and sixty postdoctoral fellows. Today, more than fifty of his former students and postdocs hold prominent faculty positions at Universities around the world.
Magalí Lingenfelder is currently leading the Max Planck-EPFL Laboratory for Molecular Nanoscience. Her vision is to create atomically tailored interfaces for applications in two distinct areas of urgent technological and societal relevance: energy conversion and smart antimicrobial interfaces. To access the nanoscale, her group uses a combination of state-of-the-art scanning probe microscopy and solid state spectroscopy, allowing the study of kinetic processes in-situ under liquid flow and potential control conditions (operando electrocatalysis). She made seminal contributions to the field of metal-organic coordination networks on solid surfaces, and received the Otto Hahn medal in 2008 for the microscopic understanding of the chiral recognition process with submolecular resolution. She is a committed mentor, and since her relocation from the Lawrence Berkeley National Laboratory, USA to EPFL in 2013, she directed 3 MSc. theses, 4 PhD theses and 4 postdocs. She advocates for problem-oriented interdisciplinary research: she led 5 international research consortiums, delivered over 40 invited presentations and organized 9 conferences and 4 doctoral schools. In 2018, the Royal Society of Chemistry included her work in the first collection “Celebrating Excellence in Research: 100 Women of Chemistry”.
Cette page est générée automatiquement et peut contenir des informations qui ne sont pas correctes, complètes, à jour ou pertinentes par rapport à votre recherche. Il en va de même pour toutes les autres pages de ce site. Veillez à vérifier les informations auprès des sources officielles de l'EPFL.
The course covers relevant experimental and theoretical concepts in nanoscale science, from fundamental aspects like quantum tunneling and quantum size effects, to hot topics like quantum transport and nanoscale magnetism. ...
thumb|Atomes de silicium à la surface d'un cristal de carbure de silicium (SiC). Image obtenue à l'aide d'un STM. Le microscope à effet tunnel (en anglais, scanning tunneling microscope, STM) est inventé en 1981 par des chercheurs d'IBM, Gerd Binnig et Heinrich Rohrer, qui reçurent le prix Nobel de physique pour cette invention en 1986. C'est un microscope en champ proche qui utilise un phénomène quantique, l'effet tunnel, pour déterminer la morphologie et la densité d'états électroniques de surfaces conductrices ou semi-conductrices avec une résolution spatiale pouvant être égale ou inférieure à la taille des atomes.
L'effet tunnel désigne la propriété que possède un objet quantique de franchir une barrière de potentiel même si son énergie est inférieure à l'énergie minimale requise pour franchir cette barrière. C'est un effet purement quantique, qui ne peut pas s'expliquer par la mécanique classique. Pour une telle particule, la fonction d'onde, dont le carré du module représente la densité de probabilité de présence, ne s'annule pas au niveau de la barrière, mais s'atténue à l'intérieur de la barrière (pratiquement exponentiellement pour une barrière assez large).
In statistics, a simple random sample (or SRS) is a subset of individuals (a sample) chosen from a larger set (a population) in which a subset of individuals are chosen randomly, all with the same probability. It is a process of selecting a sample in a random way. In SRS, each subset of k individuals has the same probability of being chosen for the sample as any other subset of k individuals. A simple random sample is an unbiased sampling technique. Simple random sampling is a basic type of sampling and can be a component of other more complex sampling methods.
thumb|Exemple d'échantillonnage aléatoire En statistique, l'échantillonnage désigne les méthodes de sélection d'un sous-ensemble d'individus (un échantillon) à l'intérieur d'une population pour estimer les caractéristiques de l'ensemble de la population. Cette méthode présente plusieurs avantages : une étude restreinte sur une partie de la population, un moindre coût, une collecte des données plus rapide que si l'étude avait été réalisé sur l'ensemble de la population, la réalisation de contrôles destructifs Les résultats obtenus constituent un échantillon.
vignette|Vous prenez un échantillon aléatoire stratifié en divisant d'abord la population en groupes homogènes (semblables en eux-mêmes) (strates) qui sont distincts les uns des autres, c'est-à-dire. Le groupe 1 est différent du groupe 2. Ensuite, choisissez un EAS (échantillon aléatoire simple) distinct dans chaque strate et combinez ces EAS pour former l'échantillon complet. L'échantillonnage aléatoire stratifié est utilisé pour produire des échantillons non biaisés.
Résume les concepts clés dans Solid State Physics II, y compris les structures de bandes, les surfaces de Fermi, l'approximation de fixation serrée et les isolants par rapport aux métaux.
Couvre la théorie atomique, l'équation de Schrödinger, les nombres quantiques, les configurations d'électrons et les propriétés périodiques des éléments.
Explore la densité des états dans les dispositifs semi-conducteurs, couvrant le gaz électronique, les bandes d'énergie, la distribution de Fermi-Dirac et les structures de bandes.