Breaking 19:09 SpaceX shares continue to slide ahead of quarterly results 18:37 Amazon expands its space ambitions with plans for more than 5,000 satellites 18:18 Trump calls for end to Senate filibuster to secure Republican future 17:17 Washington faces three difficult choices over Iran 16:16 Morocco and Washington deepen defense ties with potential US drone center 15:59 Trump praises King Mohammed VI of Morocco and his “great highway” vision 13:05 Nvidia weighs $250 billion guarantee for SoftBank-led AI data center project 12:15 Infantino responds to 2026 World Cup critics with a controversial message 11:49 Tech giants urge Trump to avoid restricting open-source artificial intelligence 11:45 Stevie Wonder announces first studio album in more than two decades for 2027 11:15 Wall Street futures climb after US-Iran pause eases market concerns 11:11 US and South Korean tech giants forge a $950 billion artificial intelligence alliance 10:51 Trump freezes plans to escalate against Iran as global media assess the shift 10:00 Apple TV+ confirms Silo season 4 as the series' final chapter for summer 2027 09:37 Report says 624 US service members have been wounded in the conflict with Iran 09:15 Audi and Volkswagen push for joint restructuring amid mounting global market pressures 08:02 US ambassador praises Tiznit-Dakhla highway named after Donald Trump and reaffirms support for Moroccan sovereignty over Sahara 07:30 One killed and six injured in shooting at unauthorized party in California

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.