Disorder-broadened phase boundary with enhanced amorphous superconductivity in pressurized In2Te5
arXiv:2405.06449 · doi:10.1002/adma.202401118
Abstract
As an empirical tool in materials science and engineering, the iconic phase diagram owes its robustness and practicality to the topological characteristics rooted in the celebrated Gibbs phase law (F = C - P + 2). When crossing the phase diagram boundary, the structure transition occurs abruptly, bringing about an instantaneous change in physical properties and limited controllability on the boundaries (F = 1). Here, we expand the sharp phase boundary to an amorphous transition region (F = 2) by partially disrupting the long-range translational symmetry, leading to a sequential crystalline-amorphous-crystalline (CAC) transition in a pressurized In2Te5 single crystal. Through detailed in-situ synchrotron diffraction, we elucidate that the phase transition stems from the rotation of immobile blocks [In2Te2]2+, linked by hinge-like [Te3]2- trimers. Remarkably, within the amorphous region, the amorphous phase demonstrates a notable 25 % increase of the superconducting transition temperature (Tc), while the carrier concentration remains relatively constant. Furthermore, we propose a theoretical framework revealing that the unconventional boost in amorphous superconductivity might be attributed to an intensified electron correlation, triggered by a disorder-augmented multifractal behavior. These findings underscore the potential of disorder and prompt further exploration of unforeseen phenomena on the phase boundaries.
14 pages, 4 figures, Accepted for publication in Advanced Materials
References in corpus (14)
- PDFgetX3: A rapid and highly automatable program for processing powder diffraction data into total scattering pair distribution functions
- Microscopic evidence for a chiral superconducting order parameter in the heavy fermion superconductor UTe2
- Nature of the superconductor-insulator transition in disordered superconductors
- Disorder-Induced Inhomogeneities of the Superconducting State Close to the Superconductor-Insulator Transition
- Pressure induced Superconductivity in Topological Compound Bi2Te3
- Gate-Controlled VO2 Phase Transition for High-Performance Smart Window
- Eigenfunction fractality and pseudogap state near superconductor-insulator transition
- Coupled Ferroelectricity and Superconductivity in Bilayer -MoTe
- A novel superhard tungsten nitride predicted by machine-learning accelerated crystal structure searching
- Experimental evidence for bulk superconductivity in pure Bismuth single crystal at ambient pressure
- Disorder induced multifractal superconductivity in monolayer niobium dichalcogenides
- Pressure-induced Superconductivity at 32 K in MoB2
- Charge density wave orders and enhanced superconductivity under pressure in the kagome metal CsV3Sb5
- Caging-Pnictogen-Induced Superconductivity in Skutterudites IrX3 (X = As, P)