Examples of using Bose-einstein in English and their translations into Indonesian
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This is the essence of Bose-Einstein condensation.
Statistical Physics addresses, for instance, crucial questions about the nature of phase transitions and predicts the possibility to forge new states of matter,such as Bose-Einstein condensation in ultra-cold gases.
At temperatures close to absolute zero,atoms can form a Bose-Einstein condensate, at which point quantum mechanical effects, which are normally only observed at the atomic scale, become apparent on a macroscopic scale.
Less familiar states of matter include plasma, foam and Bose-Einstein condensate.
Polariton Bose-Einstein condensates are generated by trapping light between mirrors spaced only a few microns apart, and letting it interact with thin slabs of semiconductor material, creating a half-light, half-matter mixture known as a polariton.
This is what is meant by'Bose-Einstein condensation'.
In quantum statistics, Bose-Einstein statistics(or colloquially B-E statistics) is one of two possible ways in which a collection of non-interacting indistinguishable particles may occupy a set of available discrete energy states, at thermodynamic equilibrium.
Such process is known as Bose-Einstein condensation.
The term unstable molecule is used for very reactive species, i.e., short-lived assemblies(resonances) of electrons and nuclei, such as radicals, molecular ions, Rydberg molecules, transition states, van der Waals complexes,or systems of colliding atoms as in Bose-Einstein condensate.
This phenomenon is related to Bose-Einstein condensation.
More exotic condensed phases include the superfluid and the Bose-Einstein condensate found in certain atomic systems at very low temperature, the superconducting phase exhibited by conduction electrons in certain materials, and the ferromagnetic and antiferromagnetic phases of spin on atomic lattices.
German researchers produce smallest magnetic trap for Bose-Einstein condensates.
Usually, this coherence- called a Bose-Einstein condensate- is only observed in material substances such as superfluids or superconductors studied in the laboratory in very cold places- just a few degrees above absolute zero- and not in the hot and messy environment of a living thing.
Wieman, was able to synthesize Bose-Einstein condensate in 1995….
NSF-funded scientists or research teams discovered many of the fundamental particles of matter, analyzed the cosmic microwaves left over from the earliest epoch of the universe, developed carbon-14 dating of ancient artifacts, decoded the genetics of viruses,and created an entirely new state of matter called a Bose-Einstein condensate.
Physicists irreversibly split photons by freezing them in Bose-Einstein condensate- ScienceDaily.
In the past few decades, NSF-funded researchers have discovered many of the fundamental particles of matter, analyzed the cosmic microwaves left over from the earliest epoch of the universe, developed carbon-14 dating of ancient artifacts, decoded the genetics of viruses,and created an entirely new state of matter called a Bose-Einstein condensate.
Dr Zapf is recognized for notable achievements inmaking the definitive experimental verification of the applicability of the Bose-Einstein condensation universality class to magnetic field-induced phases in quantum magnets, requiring the development of experimental techniques at ultra-low temperatures.
Current research focus on quantum effects, such as in Bose-Einstein condensate.
You will gain hands-on experience with the latest technologies in, for example,laser cooling to study Bose-Einstein condensation, novel techniques used to study complex materials down to the(sub)atomic level, and microscopy techniques that allow you to follow biological processes on an nm scale.
We publish papers in top journals on quantum gravity and astrophysics,atom-photon interactions, Bose-Einstein condensates, lasers, and photonics.
For real-world measurement, they suggest experiments couldbe conducted with sound waves as they move through a Bose-Einstein condensate made of very cold atoms- such a setup should show enough mass being carried to allow for measurement.
The scientists from Cambridge's University, headed by lecturer Jeremy Baumberg from the NanoPhotonics Centre, in association with scientists from Greece and Mexico, have developed a switch with use of anovel state of matter known as Polariton Bose-Einstein condensate for mixing optical and electric signals with use of miniscule volumes of energy.
As an extreme example of light"slowing" in matter, two independent teams of physicists claimed tobring light to a"complete standstill" by passing it through a Bose-Einstein condensate of the element rubidium, one team at Harvard University and the Rowland Institute for Science in Cambridge, Mass., and the other at the Harvard-Smithsonian Center for Astrophysics, also in Cambridge.
The University of Cambridge researchers, led by Professor Jeremy Baumberg from the NanoPhotonics Centre, in collaboration with researchers from Mexico and Greece, have built a switch which utilises anew state of matter called a Polariton Bose-Einstein condensate in order to mix electric and optical signals, while using miniscule amounts of energy.
