Material properties such as sound insulation, resistance to extreme heat and thermal expansion originate from how the zillions of microscopic building blocks (nuclei and electrons) interact at equilibrium and respond to perturbations. Atoms are typically about one ten-billionth of a meter across, so there can be a lot of parts to keep track of—a task that is complicated at the quantum-mechanical level, where particles are neither here nor there until observed.
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| # | Наименование новости | Тональность | Информативность | Дата публикации |
|---|---|---|---|---|
| 1 | From atomic vibrations to laboratory mechanics: Bridging 20 orders of magnitude in time | 0 | 8.04 | 14-09-2026 |
| 2 | AI extracts interpretable constitutive laws directly from solid-mechanics data | 0 | 10.42 | 11-09-2026 |
| 3 | Reversible electric control unlocks persistent chiral phonon states | 0 | 9.22 | 07-09-2026 |
| 4 | New benchmark puts quantum computers to the test and reveals their limitations | 0 | 6.31 | 17-09-2026 |
| 5 | Hot electrons reveal electronic collisions may raise resistance in twisted graphene | 0 | 5.77 | 16-09-2026 |
| 6 | New catalogs map the quantum possibilities of atomically thin materials | 0 | 6.73 | 24-09-2026 |
| 7 | What AI Gets Wrong About Frontier Science, and Why It Matters | 0 | 5.73 | 21-08-2026 |
| 8 | Physicists define new material blueprint for next-generation microchip encryption | 0 | 12.93 | 24-09-2026 |
| 9 | What the World's Most Sensitive Neutrino Experiment Tells Us About the Next Fifty Years of Energy | 0 | 8.77 | 19-08-2026 |
| 10 | 从光子到宇宙粒子 | 0 | 10 | 28-08-2026 |