Phasons are collective low-energy modes that appear in disparate condensed matter systems such as quasicrystals, incommensurate structures, fluctuating charge density waves, and moiré superlattices. They share several similarities with acoustic phonon modes, but they are not protected by any exact translational symmetry. As a consequence, they are subject to a wave-vector-independent damping, and they develop a finite pinning frequency, which destroy their acoustic linearly propagating dispersion. Under a few simple, well-motivated assumptions, we compute the phason density of states, and we derive the phason heat capacity as a function of the temperature. Finally, imagining a hypothetical s-wave pairing channel with electrons, we compute the critical temperature Tc of the corresponding superconducting state as a function of phason damping using the Eliashberg formalism. We find that for large phason damping, the heat capacity is linear in temperature, showing a distinctive glasslike behavior. Additionally, we observe that the phason damping can strongly enhance the effective Eliashberg coupling, and we reveal a sharp nonmonotonic dependence of the superconducting temperature Tc on the phason damping, with a maximum located at the underdamped-to-overdamped-crossover scale. Our simple computations confirm the potential role of overdamped modes not only in explaining the glassy properties of incommensurate structures but also in possibly inducing strongly coupled superconductivity therein and enhancing the corresponding Tc.

Glassy heat capacity from overdamped phasons and hypothetical phason-induced superconductivity in incommensurate structures / C. Jiang, A. Zaccone, C. Setty, M. Baggioli. - In: PHYSICAL REVIEW. B. - ISSN 2469-9950. - 108:5(2023), pp. 054203.1-054203.11. [10.1103/physrevb.108.054203]

Glassy heat capacity from overdamped phasons and hypothetical phason-induced superconductivity in incommensurate structures

A. Zaccone
Secondo
;
2023

Abstract

Phasons are collective low-energy modes that appear in disparate condensed matter systems such as quasicrystals, incommensurate structures, fluctuating charge density waves, and moiré superlattices. They share several similarities with acoustic phonon modes, but they are not protected by any exact translational symmetry. As a consequence, they are subject to a wave-vector-independent damping, and they develop a finite pinning frequency, which destroy their acoustic linearly propagating dispersion. Under a few simple, well-motivated assumptions, we compute the phason density of states, and we derive the phason heat capacity as a function of the temperature. Finally, imagining a hypothetical s-wave pairing channel with electrons, we compute the critical temperature Tc of the corresponding superconducting state as a function of phason damping using the Eliashberg formalism. We find that for large phason damping, the heat capacity is linear in temperature, showing a distinctive glasslike behavior. Additionally, we observe that the phason damping can strongly enhance the effective Eliashberg coupling, and we reveal a sharp nonmonotonic dependence of the superconducting temperature Tc on the phason damping, with a maximum located at the underdamped-to-overdamped-crossover scale. Our simple computations confirm the potential role of overdamped modes not only in explaining the glassy properties of incommensurate structures but also in possibly inducing strongly coupled superconductivity therein and enhancing the corresponding Tc.
Settore PHYS-04/A - Fisica teorica della materia, modelli, metodi matematici e applicazioni
   Solving the multi-scale problem in materials mechanics: a pathway to chemical design (Multimech)
   Multimech
   EUROPEAN COMMISSION
   101043968
2023
9-ago-2023
Article (author)
File in questo prodotto:
File Dimensione Formato  
2305.05407v2.pdf

accesso aperto

Tipologia: Pre-print (manoscritto inviato all'editore)
Dimensione 829.03 kB
Formato Adobe PDF
829.03 kB Adobe PDF Visualizza/Apri
PhysRevB.108.054203.pdf

accesso riservato

Tipologia: Publisher's version/PDF
Dimensione 809.37 kB
Formato Adobe PDF
809.37 kB Adobe PDF   Visualizza/Apri   Richiedi una copia
Pubblicazioni consigliate

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/1121839
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 4
  • ???jsp.display-item.citation.isi??? 2
social impact