Breaking 16:50 SpaceX bets on Nvidia to power its future artificial intelligence ambitions in space 16:10 Michael Burry warns of a potential stock market bubble and compares risks to the 1987 crash 14:52 Russian name Ivan gains popularity and surpasses Donald among US newborns 12:57 US launches investigation after passenger jet and presidential helicopter separation incident 12:43 World cup 2026: U.S. host cities demand millions in payments from FIFA 12:19 United States clarifies marriage requirements for green card and family visa applications 12:00 SpaceX reports strong revenue growth despite quarterly loss 11:30 Cyclospora outbreak in the United States causes two deaths and thousands of infections 11:11 SpaceX rocket crashes into the Moon creating a new crater 10:25 US official sees possible agreement to reopen Strait of Hormuz within days 10:15 Israel has not accepted US-backed Gaza proposal, Netanyahu says 08:15 Armed man arrested at Trump golf course in California ahead of presidential visit 07:45 Netflix restores service after global outage disrupts streaming for thousands of users 07:30 California wine crisis drives vineyard owner to burn his own vines after closing family business 07:00 Eight South Korean students detained after attempting to enter US military base 19:58 Wall Street reaches record highs amid optimism over potential Strait of Hormuz breakthrough 19:15 SpaceX rocket stage set for controlled impact on the Moon, offering valuable scientific insights 18:58 Magnificent Seven stocks rally as AI optimism boosts investor confidence 17:17 McDonald’s beats profit forecasts despite slower sales growth in the U.S.

Mit team cools trapped ions far below standard limit

Friday 16 January 2026 - 09:20
By: Dakir Madiha
Mit team cools trapped ions far below standard limit

Researchers from the Massachusetts Institute of Technology and MIT Lincoln Laboratory have developed a breakthrough technique that cools trapped ions to temperatures about 10 times lower than the conventional Doppler limit in laser cooling. This method, leveraging integrated photonics on a chip, achieves the feat in roughly 100 microseconds, outpacing existing approaches by several multiples. The innovation tackles a key bottleneck in trapped-ion quantum computing, where ions must approach absolute zero to curb vibrations that trigger computational errors.

Traditional setups rely on bulky external lasers and optics to target ions held in cryostats, limiting scalability to just dozens of qubits. The new polarization gradient cooling employs two light beams with differing polarizations that intersect to create a rotating vortex, efficiently damping ion motion. Implemented on a photonic chip with nanoscale antennas linked by waveguides, this allows envisioning thousands of sites on a single chip interfacing with numerous ions for scalable operations. Felix Knollmann, a doctoral student in MIT's physics department, noted that this paves the way for expansive quantum systems. The findings appear in Light: Science and Applications and Physical Review Letters.

In parallel, scientists from the Technical University of Vienna and Rice University reported observing an emergent topological semimetal, a quantum state once deemed impossible because it merges two supposedly incompatible phenomena. Working with a cerium-ruthenium-tin compound near absolute zero, they detected topological properties despite electrons lacking the precise velocities and energies typically required. Diana Kirschbaum, lead author from TU Wien, described the material as oscillating between states, rendering the quasiparticle concept meaningless in this fluctuating regime. Silke Bühler-Paschen, a TU Wien physics professor and co-leader, called it a major surprise, urging broader definitions of topological states. Theoretical modeling by Lei Chen in Qimiao Si's Rice group linked the behavior to quantum criticality itself. Published in Nature Physics, these advances promise practical quantum technologies, from scalable processors to advanced sensors and low-power electronics.


  • Fajr
  • Sunrise
  • Dhuhr
  • Asr
  • Maghrib
  • Isha

Read more

This website, walaw.press, uses cookies to provide you with a good browsing experience and to continuously improve our services. By continuing to browse this site, you agree to the use of these cookies.