Il corso tratta la fisica sperimentale dei materiali quantistici:
La fisica dei materiali quantistici [Keimer]. Esperimenti elettrici e ottici sul liquido quantistico di Hall e studio delle cariche frazionarie [Stormer]. Grafene ed esperimenti sui Fermioni di Dirac [Geim]. Qualunquoni e computer quantistici topologici [Castelvecchi]. Spettroscopia ARPES e visualizzazione delle bande lineari del grafene [Pichler]. Esperimenti sui materiali quantistici ai laboratori Europei EMFL, ESRF e FELIX. Miraggi quantici [Manoharan]. Superconduttività nel graphene con angolo magico [Gibney]. La farfalla di Hofstadter nel grafene [Johnston]. Materiali topologici [Ramirez].
- Castelvecchi, “Welcome anyons! Physicists find best evidence yet for long-sought 2D structures”, https://www.nature.com/articles/d41586-020-01988-0
- Geim et al. “The rise of graphene”, http://www.condmat.physics.manchester.ac.uk/pdf/mesoscopic/publications/graphene/Naturemat_2007Review.pdf
- Gibney, “How ‘magic angle’ graphene is stirring up physics”, https://www.nature.com/articles/d41586-018-07848-2
- Johnston, “Hofstadter's butterfly spotted in graphene”, https://physicsworld.com/a/hofstadters-butterfly-spotted-in-graphene/
- Keimer et al., “The physics of quantum materials”, https://www.nature.com/articles/nphys4302
- Manoharan et al.,” Quantum mirages formed by coherent projection of electronic structure”, https://www.nature.com/articles/35000508
- Pichler “Unraveling Electron Chirality in Graphene”, https://physics.aps.org/articles/v4/79
- Ramirez et al., “Dawn of the topological age?”, https://physicstoday.scitation.org/doi/10.1063/PT.3.4567
- Stormer, ”The Fractional Quantum Hall Effect” ,
https://www.nobelprize.org/uploads/2018/06/stormer-lecture.pdf
- Docente: VITTORIO BELLANI