Inverse melting and re-entrant transformations of the vortex lattice in amorphous Re6Zr thin film
arXiv:2406.07027 · doi:10.1038/s41467-025-57431-3
Abstract
Melting of a solid is one of the most ubiquitous phenomena observed in nature. Most solids, when heated, melt from a crystalline state to an isotropic liquid at a characteristic temperature. There are however situations where increase in temperature can induce a transition to a more ordered state. Broadly termed as "inverse melting", experimental realisations of such situations are rare. Here, we report such a phenomenon in the 2-dimensional vortex liquid that forms in a moderately pinned amorphous Re6Zr (a-ReZr) thin film, from direct imaging of the vortex lattice using a scanning tunnelling microscope. At low temperature and magnetic fields, we find that the vortices form a "pinned liquid" , that is characterised by a low mobility of the vortices and vortex density that is spatially inhomogeneous. As the temperature or magnetic field is increased the vortices become more ordered, eventually forming a nearly perfectly ordered vortex lattice. Above this temperature/magnetic field, the ordered vortex lattice melts again into a vortex liquid. This re-entrant transformation from a liquid to solid-like state and then back to a liquid also leaves distinct signature in the magnetotransport properties of the superconductor.
References in corpus (10)
- Two step disordering of the vortex lattice across the peak effect in a weakly pinned Type II superconductor, Co0.0075NbSe2
- How the vortex lattice of a superconductor becomes disordered: a study by scanning tunneling spectroscopy
- Experimental evidence for a Bragg glass density wave phase in a transition-metal dichalcogenide
- Quantum electron liquid and its possible phase transition
- Bragg glass signatures in PdErTe with X-ray diffraction Temperature Clustering (X-TEC)
- Evidence of zero point fluctuation of vortices in a very weakly pinned a-MoGe thin film
- Thermal melting of a vortex lattice in a quasi two-dimensional Bose gas
- Structure and dynamics of a pinned vortex liquid in superconducting a-Re_xZr (x ~ 6) thin film
- Superconductivity in amorphous RexZr (x ~ 6) thin films
- Low frequency electrodynamics in the mixed state of superconducting NbN and a-MoGe films using two-coil mutual inductance technique