Carlo Di Castro (born 14 August 1937) is an Italian theoretical physicist in the field of statistical mechanics, superconductivity, and condensed matter physics. He is a patriarch of Italian theoretical condensed matter physics, founder of the “Rome Group” (together with Claudio Castellani), member of the “Academia dei Lincei”, and emeritus professor of Sapienza University of Rome. In 1969, Di Castro, in co-authorship with Giovanni Jona-Lasinio, introduced the revolutionary renormalization group approach into the study of critical phenomena (almost two years before the celebrated papers by Kenneth G. Wilson, laureate of the Nobel prize in Physics in 1982), providing a first example of complexity in physical systems.

Carlo Di Castro
Born(1937-08-14)14 August 1937
NationalityItalian
Alma materSapienza University of Rome
University of L'Aquila
AwardsPresidential Gold Medal for services to education and culture (2003)
Humboldt Research Award (2004)
Meritorious Member of the Italian Physical Society (2015)
Scientific career
InstitutionsSapienza University of Rome

Early life, education, and professional career

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Carlo Di Castro was born in Rome to a Jewish family. During World War II he had a traumatic experience having to flee his home and going into hiding using assumed names. He summarizes his experience with the sentence: “the fear of the unknown must be overcome through knowledge and reason.” In 1956, he started his studies in Rome at Sapienza University at the college of engineering for the first two years, but then decided to devote himself to physics. He got in the circle of Amaldi's disciples and in 1961, after submitting his thesis on superfluid Helium, for which he received a laurea degree. Di Castro continued his studies in Birmingham entering the warm community surrounding R. E. Peierls. In 1964, under the supervision of John G. Valatin, he was awarded a Ph.D. in mathematical physics for his thesis devoted to the behavior of thin superconducting films in magnetic fields. In 1965, Di Castro joined the Rome division of the National Institute of Nuclear Physics. He was full professor in condensed matter physics at the University of L'Aquila in 1976/77 and, since 1978, in statistical mechanics at Sapienza University of Rome (further details can be found in the interview article The beginnings of theoretical condensed matter physics in Rome: a personal remembrance[1]).

Research interests and highlights

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Carlo Di Castro's main research interest has been the understanding of collective properties of condensed matter and many-body systems, whose behavior cannot be explained in terms of single particle paradigms and whose emergent low energy properties are qualitatively different from those of non-interacting systems. Particular attention has been given to the phenomenology of superfluid Helium & superconductivity, criticality & quantum criticality, strongly correlated electron systems, metal-insulator transitions, and high-temperature superconductors. He has pioneered the renormalization group (RG) approach to critical phenomena providing the basis for the derivation of the scaling theory of critical phenomena in 1969. The initiating role of this paper can be seen, e.g., in Wilson's Nobel Lecture.[2] In 1971 he developed the first field theoretical formulation of the famous ε-expansion to calculate critical exponents.[3][4][5][6]

He extended the RG approach to quantum Bose[7][8] and anomalous Fermi-Luttinger liquids.[9][10] In the former problem he tackled the long-standing problem of three-dimensional infrared singularities in the calculation of the quasi-particle spectrum of superfluid Helium. For the Fermi case - in contradiction to Anderson's proposal for strange metal behavior in high-temperature superconductors - he studied the crossover between the one-dimensional Luttinger liquid to Landau-Fermi liquids in higher dimensions. The interplay between Mott metal-insulator transition due to correlations and Anderson localization due to disorder was considered one of the most difficult open problems in the 1980s.

Di Castro used symmetry properties of the Hubbard Hamiltonian to characterize the order parameter of the Mott transition[11] and, using renormalization group and symmetry properties, made key contributions to the theory of interacting disordered systems beyond Anderson localization.[12][13][14] The problem of the existence of a disordered metallic phase in two-dimensions (which is still unresolved) was also addressed.[15] His research group proposed in the 1990s a scenario of high-temperature cuprate superconductors and of their anomalous metallic state based on phase separation and charge density wave order with quantum criticality, which was ahead of its time.[16][17][18][19] Since 2012, charge density wave order has been observed routinely in cuprates and is now the most studied phenomenon among competing orders.[20] Recently, Di Castro proposed that the violation of the Fermi liquid paradigm and the formation of the so-called strange metal state in cuprates and other materials near quantum critical points, arise from nearly overdamped charge fluctuations of the local order parameter.[21][22]

Honors and awards

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  • member of the IUPAP Condensed Matter Physics Commission (1993–1999).
  • Presidential Gold Medal for services to education and culture (2003),
  • Humboldt Research Award in recognition of his accomplishments in research and teaching (2004)
  • Meritorious Member of the Italian Physical Society (2015).

References

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  1. ^ Di Castro, Carlo; Bonolis, Luisa (2014). "The beginnings of theoretical condensed matter physics in Rome: a personal remembrance". The European Physical Journal H. 39: 3–36.
  2. ^ Wilson, Kenneth G. (1983). "The renormalization group and critical phenomena". Rev. Mod. Phys. 55: 583.
  3. ^ Di Castro, Carlo; Jona-Lasinio, Giovanni (1969). "On the microscopic foundation of scaling laws". Physics Letters A. 29: 322–323.
  4. ^ De Pasquale, F.; Di Castro, C.; Jona-Lasinio, G. (1971). Green, M.S. (ed.). "Field theory approach to phase transitions". Critical Phenomena. Academic Press, New York.
  5. ^ Di Castro, Carlo (1972). "The multiplicative renormalization group and the critical behaviour in d=4−ɛ dimensions". Lettere al Nuovo Cimento. 5: 69–74.
  6. ^ Di Castro, C.; Jona-Lasinio, G. (1976). Green, M.S. (ed.). "The renormalization group approach to critical phenomena". Phase transitions and critical phenomena. 6. Academic Press, New York.
  7. ^ Castellani, C.; Di Castro, Carlo; Pistolesi, F.; Strinati, G. C. (1997). "Infrared Behavior of Interacting Bosons at Zero Temperature". Phys. Rev. Lett. 78: 1612–1615.
  8. ^ Pistolesi, F.; Castellani, C.; Di Castro, Carlo; Strinati, G. C. (2004). "Renormalization-group approach to the infrared behavior of a zero-temperature Bose system". Phys. Rev. B. 69: 024513.
  9. ^ Castellani, C.; Di Castro, C.; Metzner, W. (1994). "Dimensional crossover from Fermi to Luttinger liquid". Phys. Rev. Lett. 72: 316–319.
  10. ^ Metzner, Walter; Castellani, Claudio; Di Castro, Carlo (1998). "Dimensional crossover from Fermi to Luttinger liquid". Advances in Physics. 47: 317–445.
  11. ^ Castellani, C.; Castro, C. Di; Feinberg, D.; Ranninger, J. (1979). "New Model Hamiltonian for the Metal-Insulator Transition". Phys. Rev. Lett. 43: 1957–1960.
  12. ^ Castellani, C.; Di Castro, C.; Lee, P. A.; Ma, M. (1984). "Interaction-driven metal-insulator transitions in disordered fermion systems". Phys. Rev. B. 30: 527–543.
  13. ^ Castellani, C.; Di Castro, C.; Lee, P. A.; Ma, M.; Sorella, S.; Tabet, E. (1984). "Spin fluctuations in disordered interacting electrons". Phys. Rev. B. 30: 1596–1598.
  14. ^ Castellani, C.; Di Castro, C. (1986). "Effective Landau theory for disordered interacting electron systems: Specific-heat behavior". Phys. Rev. B. 34: 5935–5938.
  15. ^ Castellani, C.; Di Castro, C.; Lee, P. A. (1998). "Metallic phase and metal-insulator transition in two-dimensional electronic systems". Phys. Rev. B. 57: R9381–R9384.
  16. ^ Castellani, C.; Di Castro, C.; Grilli, M. (1995). "Singular Quasiparticle Scattering in the Proximity of Charge Instabilities". Phys. Rev. Lett. 75: 4650–4653.
  17. ^ Castellani, C.; Di Castro, C.; Grilli, M. (1996). "Non-Fermi-liquid behavior and d-wave superconductivity near the charge-density-wave quantum critical point". Zeitschrift für Physik B Condensed Matter. 103: 137–144.
  18. ^ Perali, A.; Castellani, C.; Di Castro, C.; Grilli, M. (1996). "d-wave superconductivity near charge instabilities". Phys. Rev. B. 54: 16216–16225.
  19. ^ Andergassen, S.; Caprara, S.; Di Castro, C.; Grilli, M. (2001). "Anomalous Isotopic Effect Near the Charge-Ordering Quantum Criticality". Phys. Rev. Lett. 87: 056401.
  20. ^ Arpaia, R.; Caprara, S.; Fumagalli, R.; De Vecchi, G.; Peng, Y. Y.; Andersson, E.; Betto, D.; De Luca, G. M.; Brookes, N. B.; Lombardi, F.; Salluzzo, M.; Braicovich, L.; Di Castro, C.; Grilli, M.; Ghiringhelli, G. (2019). "Dynamical charge density fluctuations pervading the phase diagram of a Cu-based high-Tc superconductor". Science. 365: 906–910.
  21. ^ Seibold, Götz; Arpaia, Riccardo; Peng, Ying Ying; Fumagalli, Roberto; Braicovich, Lucio; Di Castro, Carlo; Grilli, Marco; Ghiringhelli, Giacomo Claudio; Caprara, Sergio (2021). "Strange metal behaviour from charge density fluctuations in cuprates". Communications Physics. 4: 7.
  22. ^ Caprara, Sergio; Di Castro, Carlo; Mirarchi, Giovanni; Seibold, Götz; Grilli, Marco (2022). "Dissipation-driven strange metal behavior". Communications Physics. 5: 10.

Publications

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