Polski

Generating dark and entangled states in optical cavities: unlocking new possibilities in quantum metrology

186
2024-02-20 14:20:50
Zobacz tłumaczenie

Physicists have been working hard to improve the accuracy of atomic clocks, which are the most precise timing devices currently available. A promising way to achieve higher accuracy is to utilize spin squeezed states in clock atoms.

Spin squeezed states are entangled quantum states in which particles work together to counteract their inherent quantum noise. These states provide incredible potential for quantum enhanced measurement and metrology. However, creating spin squeezed states with minimal external noise in optical transitions has always been a challenging task.

The research team led by Anna Maria Ray has been focusing on using optical cavities to generate spin squeezed states. These chambers are composed of mirrors, allowing light to reflect back and forth multiple times. In the cavity, atoms can synchronize their photon emission, producing much brighter light than individual atoms alone. This phenomenon is called superradiance. According to the control method of superradiance, it may lead to entanglement or destruction of the required quantum state.

In their previous work, Rey and her team found that multi-level atoms with two or more internal energy states provided unique opportunities for utilizing superradiance emission. By inducing atoms to cancel each other's emission, they can produce dark states that are not affected by superradiance.

Now, in two recently released studies, the team has revealed a method that can not only generate dark states in optical cavities, but also spin compress these states. This breakthrough opens up exciting possibilities for the generation of entangled clocks and the advancement of quantum metrology.

Researchers have discovered two methods for preparing highly entangled spin squeezed states in atoms. One method is to use a laser to power atoms and place them at special points on a superradiance potential called saddle points. At these points, atoms reshape their noise distribution and become highly compressed. Another method is to transfer the superradiance state to the dark state, utilizing specific points where atoms approach bright spots with zero curvature.
The fascinating aspect of these findings is that even without external laser drive, spin squeezing can be retained. This conversion of compressed state to dark state not only maintains the reduced noise characteristics, but also ensures their survival.

These findings provide new avenues for quantum metrology, enabling more precise measurements and enhancing the capabilities of atomic clocks. By utilizing dark and entangled states within optical cavities, researchers can unleash the potential of quantum enhancement technology and delve deeper into the fascinating world of quantum physics.

Source: Laser Net

Powiązane rekomendacje
  • Samsung Heavy Industries Developing a Laser High Speed Welding Robot for Liquefied Natural Gas Ships

    South Korea's Samsung Heavy Industry announced on Thursday that it has developed the first laser high-speed welding robot in the maritime field, aimed at significantly improving the construction efficiency of liquefied natural gas (LNG) transport ships.This new technology is specifically designed for rapid welding of thin film panels used in cargo compartments of liquefied natural gas transport sh...

    2023-09-22
    Zobacz tłumaczenie
  • The application of laser technology in the automated production line of energy storage/power battery PACK

    Lithium batteries are highly favored in the fields of 3C digital and new energy vehicles due to their high energy density, environmental characteristics, and fast charging and discharging. Welding, as a crucial link in the manufacturing process of lithium batteries, has a decisive impact on battery performance and quality. Laser welding technology is increasingly playing an important role in the l...

    2023-12-18
    Zobacz tłumaczenie
  • Polarization of Laser Writing Waveguides Controlled by Liquid Crystal

    German researchers have developed a method for controlling and manipulating optical signals by embedding liquid crystal layers into waveguides created by direct laser writing. This work has produced devices capable of electro-optic control of polarization, which may open up possibilities for chip based devices and complex photonic circuits based on femtosecond write waveguides.Researcher Alexandro...

    2024-03-13
    Zobacz tłumaczenie
  • The latest progress in laser chip manufacturing

    Modern computer chips can construct nanoscale structures. So far, only these tiny structures can be formed on top of silicon chips, but now a new technology can create nanoscale structures in a layer beneath the surface. The inventor of this method stated that it has broad application prospects in the fields of photonics and electronics, and one day, people can manufacture 3D structures on the ent...

    2024-07-29
    Zobacz tłumaczenie
  • Innoviz Technologies, a publicly listed laser radar company, has laid off approximately 9% of its workforce

    On February 5, 2025, Innoviz Technologies, an Israeli laser radar listed company, announced operational optimization measures to extend the duration of the company's cash reserve usage and accelerate profitability and free cash flow generation. To maximize efficiency, the company will reduce investment in developing mature areas. These measures will result in a reduction of approximately 9% in the...

    02-07
    Zobacz tłumaczenie