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'Inverse' melting of a vortex lattice

  • Nurit Avraham
  • , Boris Khaykovich
  • , Yuri Myasoedov
  • , Michael Rappaport
  • , Hadas Shtrikman
  • , Dima E. Feldman
  • , Tsuyoshi Tamegai
  • , Peter H. Kes
  • , Ming Li
  • , Marcin Konczykowski
  • , Kees Van Der Beek
  • , Eli Zeldov
  • Weizmann Institute of Science Israel
  • Massachusetts Institute of Technology
  • Landau Institute for Theoretical Physics, Russian Academy of Sciences
  • University of Tokyo
  • Japan Science and Technology Corporation (JST)
  • Universiteit Leiden
  • Laboratoire des Solides Irradiés

Research output: Contribution to journalArticlepeer-review

Abstract

Inverse melting is the process in which a crystal reversibly transforms into a liquid or amorphous phase when its temperature is decreased. Such a process is considered to be very rare1, and the search for it is often hampered by the formation of non-equilibrium states or intermediate phases2. Here we report the discovery of first-order inverse melting of the lattice formed by magnetic flux lines in a high-temperature superconductor. At low temperatures, disorder in the material pins the vortices, preventing the observation of their equilibrium properties and therefore the determination of whether a phase transition occurs. But by using a technique3 to 'dither' the vortices, we were able to equilibrate the lattice, which enabled us to obtain direct thermodynamic evidence of inverse melting of the ordered lattice into a disordered vortex phase as the temperature is decreased. The ordered lattice has larger entropy than the low-temperature disordered phase. The mechanism of the first-order phase transition changes gradually from thermally induced melting at high temperatures to a disorder-induced transition at low temperatures.

Original languageEnglish
Pages (from-to)451-454
Number of pages4
JournalNature
Volume411
Issue number6836
DOIs
Publication statusPublished - 24 May 2001

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