Nuclear fireball simulation reveals new fallout insights

Researchers at Lawrence Livermore National Laboratory have used a plasma flow reactor to recreate conditions inside a nuclear fireball. Their experiments show that cooling rates and thermal history significantly influence how radioactive particles form, particularly for volatile elements like cesium.

The team vaporized combinations of uranium, cerium, and cesium in a controlled high-temperature plasma. They then tracked particle formation under two different cooling scenarios to observe changes in chemistry and composition. Rakia Dhaoui, an LLNL scientist and study author, noted that longer exposure to high temperatures allows cesium to mix more extensively with the other elements. Uranium and cerium condensed earlier, serving as benchmarks, while cesium behaved differently based on thermal conditions. The findings indicate that many existing fallout models treat materials independently and may miss key chemical interactions. The study was published in Analytical Chemistry in 2026. Researchers plan to test more realistic material mixtures to refine models used for interpreting nuclear debris and supporting safety assessments.

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Researchers at Helmholtz-Zentrum Dresden-Rossendorf have filmed copper atoms losing and regaining electrons in femtoseconds using dual lasers. The experiment creates superheated plasma mimicking extreme cosmic conditions. Findings could advance laser fusion research.

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Researchers have created a new quantum state known as a fractional Fermi sea using ultracold cesium atoms in one dimension. The work, published in Physical Review Letters, shows particles organizing in ways that exceed standard theories.

Scientists from multiple nations are constructing the International Thermonuclear Experimental Reactor in southern France to test fusion energy at an unprecedented scale. The project carries an estimated cost of $22 billion and aims to replicate conditions inside the Sun.

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Researchers have created the first functional nuclear clock, using vibrations from radioactive thorium nuclei to measure time. The device marks a milestone after more than two decades of development and could eventually surpass the precision of current atomic clocks.

Researchers at Tokyo University of Science have demonstrated matter-wave diffraction in positronium, an exotic atom formed by an electron and its antimatter counterpart, a positron. This marks the first observation of quantum interference in such a system. The findings, published in Nature Communications, confirm positronium's wave-particle duality.

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A new theoretical model from Caltech indicates that Sun-like stars nearing the end of their lives can receive thousands of small velocity boosts from asymmetric gas eruptions. These cumulative effects may disrupt wide binary systems or, rarely, cause stellar collisions. The findings were presented at a major astronomy conference.

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