• A
  • A
  • A
  • ABC
  • ABC
  • ABC
  • А
  • А
  • А
  • А
  • А
Regular version of the site

Russian Physicists Discover Method to Increase Number of Atoms in Quantum Sensors

Russian Physicists Discover Method to Increase Number of Atoms in Quantum Sensors

© iStock

Physicists from the Institute of Spectroscopy of the Russian Academy of Sciences and HSE University have successfully trapped rubidium-87 atoms for over four seconds. Their method can help improve the accuracy of quantum sensors, where both the number of trapped atoms and the trapping time are crucial. Such quantum systems are used to study dark matter, refine navigation systems, and aid in mineral exploration. The study findings have been published in the Journal of Experimental and Theoretical Physics Letters.

Quantum sensors are devices that leverage the effects of quantum mechanics to study matter. They enable the detection of minute changes in gravitational and magnetic fields and allow for highly precise measurements of Earth's acceleration and rotation. Advancements in this field of modern applied physics have the potential to redefine the standards of accuracy in measuring physical quantities. 

However, atoms cannot simply be placed in a sensor, as thermal motion prevents them from remaining in place for even a minute. To confine atoms within a specific area, scientists slow them down by cooling them through multiple stages using various techniques. The first stage involves cooling and trapping atoms in magneto-optical traps (MOTs), which are created using laser light and magnetic fields. Creating magnetic field distributions in compact devices requires the use of an atomic chip.

'Each cooling stage reduces the number of atoms in the sensor's working volume, which in turn decreases the accuracy of the device. Therefore, it is crucial to collect as many atoms as possible during the preparation of the initial ensemble to ensure that the accuracy of the quantum sensor remains high after all cooling stages.' This is how Daria Bykova, a doctoral student and teacher at the HSE Faculty of Physics, explains the key aspect of the problem.

Primary cooling to a temperature of around a hundred microkelvins significantly slows the thermal motion of atoms, helping retain them in a designated area of space. A decrease in temperature is achieved through laser radiation: exposure to a laser beam causes atoms to lose kinetic energy and move more slowly. Together, laser radiation and a magnetic field hold atoms in place long enough to conduct experiments, effectively forming a trap from which atoms cannot easily escape. In the next stage, which does not involve a laser field, atoms are cooled to a temperature of about a hundred nanokelvins, which is another thousand times lower.

Daria Bykova conducting an experiment at the laboratory of the Institute of Spectroscopy (RAS)
© Daria Bykova

'One could say that we use laser radiation to "push" the atoms toward the centre of the trap. They are trapped by a magnetic field and the pressure of light,' comments Bykova.

An atomic chip is an effective technology that enables researchers to reduce the size of quantum sensors and improve their energy efficiency. It generates a magnetic field near its surface, which is essential for creating traps, and allows for the cooling and localisation of atom ensembles near it. 

Photo of an atomic chip
© Pyotr Skakunenko

At the Department of Laser Spectroscopy of the Institute of Spectroscopy (RAS), students and doctoral students from HSE University created traps using atomic chip technology. This configuration allowed them to retain atoms in the designated area for 4 seconds, a duration considered long in quantum technologies. 

The researchers experimentally demonstrated that when using an atomic beam to load atoms into a MOT on a chip, the number of trapped atoms increases significantly compared to loading from atomic vapour in a vacuum chamber. The researchers also confirmed their ability to effectively control the loading of the atomic trap. They were able to adjust the position of the atomic beam using laser fields. This combination of technologies has significantly increased the loading speed while maintaining an ultra-high vacuum in the atomic chip area, compared to previous experiments. 

'We discovered the optimal loading conditions in the MOT and trapped 4.9×10⁷ atoms, a number sufficient for stable operation. The ensemble's lifetime is 4.1 seconds, which is long enough to carry out the subsequent stages of deeper cooling and create a prototype of a quantum sensor,' explained Anton Afanasyev, Associate Professor at the Joint Department of Quantum Optics and Nanophotonics with the Institute for Spectroscopy (RAS) of the HSE Faculty of Physics, Senior Research Fellow at the Institute of Spectroscopy (RAS).

The study was supported by the HSE Academic Fund and carried out at the Department of Laser Spectroscopy of the Institute of Spectroscopy (RAS).

See also:

Biologists Discover Unique Properties of MiR-93-5p MicroRNA in Prostate Cancer

Researchers at the International Laboratory of Microphysiological Systems of the HSE Faculty of Biology and Biotechnology investigated how different isoforms of the same microRNA influence gene function in prostate adenocarcinoma. The study found that in some cases, microRNAs can reinforce each other’s effects by targeting and suppressing the same genes. This finding offers a fresh perspective on the molecular mechanisms underlying tumour development and on the search for disease biomarkers. The results have been published in PeerJ.

HSE Economists Use Search Queries to Forecast Birth Rates

Researchers from the HSE Faculty of Economic Sciences have shown that the accuracy of birth rate forecasts for Russia can be improved by almost 50% by incorporating the dynamics of online search queries related to pregnancy and childbirth into forecasting models. In the best-performing models, the forecasting error fell from 4.6% to 3.2%. The findings have been published in Populations and Economics.

When Looking at Their Own Faces, Men Forget Everything

In an experiment involving 15 healthy men, scientists at HSE University investigated how different phases of the cardiac cycle influence the excitability of the motor cortex when participants viewed either their own photograph or the faces of strangers. The researchers found that when participants looked at their own image, the brain’s response to signals from the heart was weaker, meaning that the influence of cardiac activity on the motor cortex decreased. This finding came contrary to expectations, as self-focused attention was thought to enhance the brain's sensitivity to internal bodily signals. The study has been published in Frontiers in Signal Processing.

HSE Researchers Discover Who Eats Out in Russia—And Why

Around one-third of Russians (31.3%) rarely eat out or buy ready-made meals. The core group of active consumers—those who eat out or purchase prepared food almost every day or several times a week—accounts for only about 9% of the population. These are the findings of a study conducted by the HSE Institute for Social Policy. According to the researchers eating out is no longer a marker of high social status in Russia.

Scientists Model How Interactions Between Societies Can Trigger Chaotic Behaviour

Scientists at HSE MIEM have proposed a mathematical model explaining how interactions between societies can influence their stability. Based on the classical theory of evolutionary games, the study reveals an unexpected effect: even a weak informational influence of one society on another can cause one society to remain stable while the other exhibits chaotic behaviour among its individual members. The study has been published in the International Journal of Bifurcation and Chaos.

Ancient Craniiform Brachiopod: A Newly Discovered Species with a Unique Shell Shape and Lifestyle

Scientists from HSE University, MSU, and Tallinn University of Technology have studied a fossil species of ancient brachiopods that lived in a warm sea in what is now northern Estonia more than 445 million years ago. These ancient brachiopods developed a cup-shaped shell with a protective 'cap' that shielded them from overgrowth by other marine organisms. The study has been published in Palaeogeography, Palaeoclimatology, Palaeoecology.

Scientists Develop Bacterium-Sized Microlaser

An international team of researchers, including scientists from HSE University–St Petersburg, has developed microlasers that emit deep-ultraviolet light at a wavelength of 255 nanometres. The devices operate at room temperature, and the smallest of them measures just two micrometres in diameter—roughly the size of a bacterium. These microlasers could be used in sensors, spectroscopic systems, photonic chips, and communication devices. The paper has been published in Optics & Laser Technology.

HSE Develops App for Assessing Phonological Processing in Children

Researchers at the HSE Centre for Language and Brain have developed a new digital tool for assessing children's phonological processing skills—the ZARYA (Sound Analysis of the Russian Language) test battery. It is the first standardised application in Russia designed to provide a fast and reliable assessment of children's ability to distinguish speech sounds, retain them in working memory, and perform phonemic analysis. The app runs on Android tablets and smartphones and is available for download from RuStore. Details of the test validation have been published in the Journal of Speech, Language, and Hearing Research.

Researchers Discover How Spelling Errors Slow Down Reading in Russian

Psycholinguists from the Centre for Language and Brain at HSE University–St Petersburg have shown that words that are frequently misspelled are processed more slowly by readers, even when presented with the correct spelling. The researchers confirmed this effect for the first time using Russian-language materials and found that response speed is most strongly linked to how confidently individuals can distinguish the correct spelling of a word from an incorrect one. The study has been published in The Mental Lexicon.

Scientists Discover Why Europium 'Misbehaves'

Europium is a rare-earth metal responsible for the pure red glow in displays and other luminescent materials. For a long time, however, it refused to emit light when surrounded by certain organic molecules known as acylpyrazolone ligands. Chemists have now uncovered the reason: in europium complexes with these ligands, a 'black window' appears—a charge-transfer state in which the energy absorbed by the ligand is dissipated as heat rather than emitted as light. Understanding this mechanism opens the way to designing more efficient red-emitting materials for displays, fluorescent thermometers, and chemical sensors. The results have been published in Dalton Transactions.