MPQ scientists apply atomic laser cooling to mesoscopic systems

April 15, 2008
April 15, 2008, Garching, Germany--Scientists at the Max Planck Institute of Quantum Optics have already succeeded in the damping of mechanical oscillations of a microresonator by applying the method of laser cooling which has been developed for single quantum particles. Now they have shown that even "resolved-sideband cooling"--a special kind of laser cooling--is applicable to an object consisting of about 10exp14 molecules.

April 15, 2008, Garching, Germany--Scientists at the Max Planck Institute of Quantum Optics have already succeeded in the damping of mechanical oscillations of a microresonator by applying the method of laser cooling which has been developed for single quantum particles. Now they have shown that even "resolved-sideband cooling"--a special kind of laser cooling--is applicable to an object consisting of about 10exp14 molecules.

This experiment is an important step towards attaining the ultimate quantum ground state of a mesoscopic object. The effective cooling process demonstrated here may be of practical interest as well, since it may be used to improve techniques such as scanning probe microscopy.

When a trapped ion oscillates with a certain frequency, its absorption spectrum consists of a series of sidebands that are displaced from the original resonance frequency by multiples of the oscillation frequency. Now cooling can be achieved by exciting the ion with laser light that is tuned to one of the energetically lower-lying sidebands. This way the photons that are absorbed by the ion are, on average, of lower energy than the photons that are emitted. This is how cooling proceeds.

In analogy to trapped ions, resolved sidebands also occur in the absorption spectra of mesoscopic optomechanical systems. Reaching this regime requires however that the mechanical oscillator frequency exceeds the optical dissipation rate of the optical resonator, that is, photons must be stored in the resonator for many mechanical oscillation periods. Only in this case, the cooling effect can outbalance the heating induced by the fluctuations of the light force. To this end, the researchers lithographically fabricated silica microtoroids (60 micrometer diameter, 70 MHz resonance frequency) and highly efficient cooling at unprecedented cooling rates was demonstrated. If the ground state can be achieved remains to be proven; after all researchers worldwide have been working on this already for more than a decade. But with the new method at hand--which has removed a fundamental roadblock--the way towards the ground state is now boldly signposted and should enable some exciting science over the coming years.

For more information, visit www.mpq.mpg.de.

Sponsored Recommendations

Request a quote: Micro 3D Printed Part or microArch micro-precision 3D printers

April 11, 2024
See the results for yourself! We'll print a benchmark part so that you can assess our quality. Just send us your file and we'll get to work.

Request a free Micro 3D Printed sample part

April 11, 2024
The best way to understand the part quality we can achieve is by seeing it first-hand. Request a free 3D printed high-precision sample part.

How to Tune Servo Systems: The Basics

April 10, 2024
Learn how to tune a servo system using frequency-based tools to meet system specifications by watching our webinar!

Precision Motion Control for Sample Manipulation in Ultra-High Resolution Tomography

April 10, 2024
Learn the critical items that designers and engineers must consider when attempting to achieve reliable ultra-high resolution tomography results here!

Voice your opinion!

To join the conversation, and become an exclusive member of Laser Focus World, create an account today!