linkedin post 2022-05-08 11:53:41

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SO ENDS this first of two weekends on the theme of time crystals. The ideas presented here are not entirely new, and come in part from Nobel prize winner Philip Anderson, the “pope of solid-state physics.” Condensed matter physics is the closest thing we have on Earth to investigating extreme conditions in outer space, with enormous densities, magnetism, heat, and cold, that likely require new physics to describe them. https://lnkd.in/e3uyixHV View in LinkedIn
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linkedin post 2022-05-08 11:52:48

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ULTRACOLD ATOMS. “Another example is ultracold atoms in optical lattice potentials which are routinely created in the laboratory by means of electromagnetic standing waves. There, ultracold atoms behave like solid state systems but the crystalline structures in space do not emerge spontaneously.” https://lnkd.in/e5UXiem5 View in LinkedIn
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linkedin post 2022-05-08 11:52:00

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PHOTONIC CRYSTALS. “For example, by imposing periodic behavior of the refractive index in space in dielectric materials, one obtains photonic crystals in which the propagation of electromagnetic waves possesses similar properties to the transport of an electron in a space crystal.” https://lnkd.in/e5UXiem5 View in LinkedIn
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linkedin post 2022-05-11 05:08:38

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MEGAMASER. When galaxies merge, they become extremely dense, and hydroxyl molecules produce a specific radio signal known as a maser in radio waves, and when that signal is very bright it is called a megamaser. A megamaser nicknamed Nkalakatha (a Zulu word that means big boss) has been detected 58 thousand billion billion kms from Earth, so the time that the light took to arrive could be greater than the age of the solar system. https://lnkd.in/ginnG4-u View in LinkedIn
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linkedin post 2022-05-11 05:06:59

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CONDENSATE DROPLETS. “This brief review summarizes recent theoretical and experimental results which predict and establish the existence of quantum droplets (QDs), i.e., robust two- and three-dimensional (2D and 3D) self-trapped states in Bose-Einstein condensates (BECs), which are stabilized by effective self-repulsion induced by quantum fluctuations around the mean-field (MF) states.” https://lnkd.in/g78xpDpU View in LinkedIn
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