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From Identical Particles to Frictionless Flow

Series
Theoretical Physics - From Outer Space to Plasma
Video Embed
John Chalker discusses how the laws of quantum mechanics lead us from the microscopic world to macroscopic phenomena.
The notion that atoms of a given isotope are indistinguishable has profound consequences in the quantum world. For liquids made of identical bosons, indistinguishability forces the particles into a quantum condensate at low temperature, where they all dance in perfect synchrony. Treated gently, such a condensate has no viscosity: once it is set in motion --say around a circular pipe -- flow will persist indefinitely (so long as the fluid is kept sufficiently cold!).

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Theoretical Physics - From Outer Space to Plasma

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Episode Information

Series
Theoretical Physics - From Outer Space to Plasma
People
John Chalker
Keywords
condensate
quantum mechanics
viscosity
Department: Department of Physics
Date Added: 03/11/2017
Duration: 00:46:03

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