Researchers stabilize new phase of matter using silver nanoparticles

Scientists at Brown University and the University of Michigan have created and stabilized a previously theoretical crystal phase by assembling custom silver nanoparticles. The breakthrough, published in Science, reveals details of metal crystal transformations and shows room-temperature quantum optical properties.

The team arranged truncated octahedron-shaped silver particles, dubbed mecons, into superlattices that match intermediate structures predicted by the Nishiyama-Wassermann pathway. These structures form during shifts between face-centered cubic and body-centered cubic arrangements in metals such as iron. The nanoparticles were coated with molecular chains that helped lock the transitional forms in place, allowing direct observation for the first time.

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MIT researchers examining a 3D holographic model of relaxor ferroelectric atomic structure visualized via multislice electron ptychography.
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MIT-led team uses multislice electron ptychography to map 3D structure of relaxor ferroelectrics

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MIT researchers and collaborators have directly characterized the three-dimensional atomic and polar structure of a relaxor ferroelectric using a technique called multislice electron ptychography, reporting that key polarization features are smaller than leading simulations predicted—results that could help refine models used to design future sensing, computing and energy devices.

Scientists at Rice University have determined that cerium magnesium hexalluminate, previously thought to host a quantum spin liquid, actually exhibits a novel state of matter driven by competing magnetic forces. The discovery, detailed in a study published in Science Advances, explains the material's lack of magnetic order and continuum of energy states through neutron scattering experiments. Researchers describe it as the first observation of such a phenomenon.

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Researchers at the University of Texas at Austin have observed a sequence of exotic magnetic phases in an ultrathin material, validating a theoretical model from the 1970s. The experiment involved cooling nickel phosphorus trisulfide to low temperatures, revealing swirling magnetic vortices and a subsequent ordered state. This discovery could inform future nanoscale magnetic technologies.

Researchers at King's College London have created a novel aluminum compound that mimics the reactivity of rare metals. The discovery, featuring a unique triangular structure, could enable cheaper and greener chemical processes. Led by Dr. Clare Bakewell, the team published their findings in Nature Communications.

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Researchers at KAIST have directly observed how charge density waves form uneven, patchy patterns inside a quantum material during a phase transition. Using advanced 4D-STEM microscopy, the team mapped the strength and coherence of these electron patterns at nanoscale resolution. The findings reveal that electronic order persists in small pockets even above the transition temperature.

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