Researchers demonstrate superconductivity in SnTe nanowires on InP substrates via indium diffusion, creating a thin InxSn1-xTe layer. Little-Parks oscillations confirm the effect, offering a potential platform for topological superconductors.

Researchers demonstrate superconductivity in SnTe nanowires on InP substrates via indium diffusion, creating a thin InxSn1-xTe layer. Little-Parks oscillations confirm the effect, offering a potential platform for topological superconductors.
Researchers demonstrated how flux mismatch between 2D material layers enables electric control of topological phases through topologically enforced Weyl monopoles, enabling programmable chiral transport in moire heterostructures and graphene bilayers.
Comprehensive experimental guide for detecting chiral phonons—quantized vibrations with angular momentum—enabling applications in spintronics, quantum information processing, and biosensing through multiple complementary spectroscopic techniques.
Researchers developed a new method using purity-corrected stabilizer Rényi entropy to detect quantum phase transitions in frustrated magnetic systems, identifying critical points where conventional entanglement measurements failed.
New five-year MEAD program will use atomic-scale doping and isotopic engineering to create advanced materials for quantum sensors, secure communications, and computing. Aims to bridge laboratory innovation and commercial deployment.
La Luce Cristallina unveiled a silicon-based strontium titanate on insulator (STO) wafer platform engineered for cryogenic quantum devices, advancing materials technology for quantum computing systems.
Ultrafast laser pulses reshape collective magnetic excitations in cuprates via time-resolved X-ray scattering, revealing new pathways to control superconductor properties through light-driven manipulation of paramagnon populations.