Discovery reverses direction of turbulent energy flow

Researchers have found a way to alter the direction of energy flow in turbulence, challenging a theory established in 1941. The work, conducted at the University of Pittsburgh with Italian collaborators, was published in Science Advances in 2025.

The study shows that energy in turbulent flows does not always follow the long-predicted path from larger to smaller scales in three-dimensional settings. Led by assistant professor Lei Fang, the team demonstrated that tensor geometry can redirect this flow in either direction. Experiments used a thin layer of water driven by electromagnetic forces, with tracer particles to track movement. Results matched simulations and confirmed that alignment of forces can change energy transfer. Applications may include better dispersion of coastal contaminants and improved mixing in microfluidic medical devices. The framework could also aid climate models by accounting for shifts in ocean and atmospheric energy flows.

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Researchers have demonstrated a method to extract energy from synthetic rotation mimicking a spinning black hole using a stationary device. The experiment, conducted at the Advanced Science Research Center at the CUNY Graduate Center, brings long-standing theoretical ideas into practical use. It was detailed in a paper published in Nature in 2026.

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An international research team has developed a device that can direct, switch and store thermal radiation without ongoing power. The breakthrough separates heat absorption from emission, overcoming a long-standing materials science limit known as reciprocity.

Scientists at California Polytechnic State University have discovered new forms of quantum matter by varying magnetic fields over time. The breakthrough, detailed in Physical Review B, shows that time-dependent control can produce stable quantum states without static equivalents. This could advance quantum computing by making systems more resistant to errors.

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Researchers at Peking University have discovered narwhal-shaped wavefunctions that trap light at scales far smaller than previously possible using only dielectric materials. The breakthrough, detailed in a 2025 paper, avoids the energy losses common in metal-based approaches. It opens paths to more efficient photonic devices and advanced imaging.

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