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Distant time crystals oscillate in unison

Physicists at TU Dortmund University demonstrate non-local synchronization of electron-nuclear spin oscillations, opening routes to controllable spin networks. Many time crystals can form in the same material and synchronize their oscillations, even at distances exceeding one thousand times the size of an individual oscillator.

SourceTU Dortmund University·JournalNature Communications·TypeExperimental study·DateAug 10, 2026

Physicists identify upper limit to resistivity in a pure metal

Researchers discovered a maximum amount of electrical resistance that can occur due to electron collisions, offering insights into what causes resistivity at the microscopic level. The study found that when interactions between atoms become too strong, the resistivity caused by collisions eventually stops rising and saturates.

SourceUniversity of Toronto·JournalPhysical Review Letters·TypeExperimental study·DateJun 16, 2026

No need for rare earths or liquid helium! Cryogenic cooling material composed solely of abundant elements

A new regenerator material composed solely of copper, iron, and aluminum can achieve cryogenic temperatures without using rare-earth metals or liquid helium. The material utilizes a special property called frustration found in magnetic materials to demonstrate practical-level performance.

SourceNational Institute for Materials Science, Japan·JournalScientific Reports·TypeExperimental study·DateFeb 3, 2026

Hidden order in quantum chaos: the pseudogap

Physicists used a quantum simulator to study the interaction of electrons in a material with a pseudogap state. They found that subtle magnetic patterns shape this mysterious phase of matter, which appears above the temperature at which it becomes superconducting.

SourceSimons Foundation·JournalProceedings of the National Academy of Sciences·TypeExperimental study·DateJan 19, 2026

Quantum physics: new state of matter discovered

Scientists have found a way to describe topological states in materials where the particle picture breaks down. The discovery sheds light on a new type of behavior, exhibiting spontaneous Hall effect and quantum-critical fluctuations. This finding opens up possibilities for storing quantum information and developing novel sensors.

SourceVienna University of Technology·JournalNature Physics·TypeExperimental study·DateJan 14, 2026

A new comprehensive safety assessment framework for liquid hydrogen storage systems in UAVs

A comprehensive safety assessment framework for liquid hydrogen storage systems in UAVs has been developed, addressing thermal performance and structural integrity challenges. The framework integrates multiple analyses, including thermal insulation, structural analysis, fatigue testing, and impact assessments.

SourceSeoul National University of Science & Technology·JournalInternational Journal of Hydrogen Energy·TypeExperimental study·DateSep 23, 2025

New material design strategy unlocks magnetic tunability in quasicrystal approximants

Researchers develop a method to transform spin-glass-like quasicrystals into ferromagnetic materials with tunable magnetic properties and strong magnetocaloric response. The technique enables expanded electron-to-atom ratios, unlocking new possibilities for designing high-performance magnetic refrigeration materials.

SourceTokyo University of Science·JournalJournal of the American Chemical Society·TypeExperimental study·DateAug 27, 2025

The quest for room-temperature superconductors

Physicists at Queen Mary University of London have discovered that room-temperature superconductivity may be theoretically possible within the laws of our Universe. The research reveals that fundamental constants such as electron mass and Planck constant govern the upper limit of superconducting temperature, which comfortably includes ...

SourceQueen Mary University of London·JournalJournal of Physics Condensed Matter·DateMar 5, 2025

Tracking unconventional superconductivity

Researchers at HZDR have discovered a new superconductor that remains stable under extremely high magnetic fields. This breakthrough offers potential for groundbreaking technological advancements. The material, UTe2, exhibits spin-triplet superconductivity and can withstand magnetic fields up to 73 tesla, setting a record.

SourceHelmholtz-Zentrum Dresden-Rossendorf·JournalNature Communications·TypeExperimental study·DateJan 31, 2024

Rice research opens new arena to study quantum interactions

Researchers at Rice University have developed a new experimental technique that preserves quantum coherence in ultracold molecules for a significantly longer time. By using a specific wavelength of light, the 'magic trap' delays the onset of decoherence, allowing scientists to study fundamental questions about interacting quantum matter.

SourceRice University·JournalNature Physics·TypeExperimental study·DateJan 18, 2024

New transactions of nonferrous metals society of china study uncovers low-temperature deformation mechanism of pure titanium

Researchers investigate grain size and temperature effects on Ti deformation at extremely low temperatures, finding that cryogenic temperatures trigger deformation twinning, boosting strength and ductility. The study proposes a modified Hall-Petch relationship to explain strengthening mechanisms at cryogenic temperatures.

SourceCactus Communications·JournalTransactions of Nonferrous Metals Society of China·TypeExperimental study·DateJan 10, 2024

High-temperature superconductors, with a twist?

A Harvard University research team has demonstrated a new strategy for making and manipulating cuprate superconductors, clearing a path to engineering new forms of superconductivity. The team created a high-temperature, superconducting diode made out of thin cuprate crystals using a low-temperature device fabrication method.

SourceHarvard University·JournalScience·TypeExperimental study·DateDec 18, 2023

Riddle of Kondo effect solved in ultimately thin wires

Physicists have directly observed the Kondo effect in a single artificial atom using a scanning tunnelling microscope. The team confirmed a decades-old prediction by validating their experimental data against theoretical models. This breakthrough paves the way for investigating exotic phenomena in magnetic wires.

SourceUniversity of Cologne·JournalNature Physics·TypeExperimental study·DateNov 15, 2023

TNMSC researchers create high-performance aluminum matrix composites with asymmetric cryocooling

Scientists have developed a new method to manufacture high-performance aluminum matrix composites using asymmetric cryorolling, resulting in improved mechanical properties and increased ductility. The technique produces sheets with fewer microvoids, finer grain size, and higher density of dislocations.

SourceCactus Communications·JournalTransactions of Nonferrous Metals Society of China·TypeExperimental study·DateAug 8, 2023

Quantum scientists accurately measure power levels one trillion times lower than usual

Researchers at Aalto University create a new bolometer that can accurately measure microwave power down to the femtowatt level at ultra-low temperatures. This breakthrough device has the potential to significantly advance quantum computing and technology, enabling more precise control over qubits and improving overall performance.

SourceAalto University·JournalReview of Scientific Instruments·DateMay 25, 2023

Physicists find unusual waves in nickel-based magnet

Researchers found that two outermost electrons from each nickel ion behaved differently, cancelling each other out in a phenomenon called a spin singlet. This led to the discovery of two families of propagating waves at dramatically different energies, contradicting expectations of local excitations.

SourceRice University·JournalNature Communications·TypeExperimental study·DateApr 18, 2023

Thinking big and dark by starting small and light

Scientists at Kyoto University have established a new experimental method to examine ultra-light dark matter, addressing the challenging problem of detection. By applying millimeter-wave sensing technology in cryogenic conditions, they were able to detect dark photons with a mass range previously unexplored.

SourceKyoto University·JournalPhysical Review Letters·TypeExperimental study·DateMar 20, 2023

Ultracold circuits

Researchers at the University of Basel have achieved a record low temperature of 220 microkelvin by cooling an electric circuit made of copper on a silicon chip using magnetic fields and an improved thermometer. This breakthrough allows for further study of quantum effects and potential applications in quantum technologies.

SourceUniversity of Basel·JournalPhysical Review Research·TypeExperimental study·DateSep 22, 2022

The magneto-optic modulator

UC Santa Barbara researchers develop a device to convert data from electrical current to pulses of light, allowing for faster transmission between cryogenic and room-temperature systems. The magneto-optic modulator enables the integration of superconducting microprocessors and quantum computers, promising revolutionized computation.

SourceUniversity of California - Santa Barbara·JournalNature Electronics·DateSep 16, 2022

Antiferromagnetic hybrids achieve important functionality for spintronic applications

Researchers have successfully achieved efficient spin injection and transport in antiferromagnetic hybrids, paving the way for room-temperature spintronics devices. The study, led by Igor Barsukov at UC Riverside, shows promise for ultra-fast and energy-efficient information storage and processing.

SourceUniversity of California - Riverside·JournalPhysical Review Research·TypeExperimental study·DateAug 23, 2022

Rare-earth-based lasing in multiple bands simultaneously

Researchers successfully demonstrate room-temperature multiband microlasers spanning a large wavelength range using rare earth elements. The lasing process combines downshifting and upconversion, expanding the emission wavelength range. The resulting microlasers exhibit good intensity stability and are suitable for practical applications.

Unfreezing waters in ligand binding sites

Scientists at St. Jude Children's Research Hospital developed an algorithm to identify temperature-sensitive conformations in proteins, revealing the importance of water networks in ligand binding sites. The findings challenge the assumption that well-resolved cryogenic water positions are both precise and accurate.

SourceSt. Jude Children's Research Hospital·JournalAngewandte Chemie·TypeExperimental study·DateJun 7, 2022