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Quantum CalorimetryYour opponent's serve was almost perfect, but you vigorously returned it beyond his outstretched racquet to win the point. Now the tennis ball sits wedged in the chain-link fence around the court. What happened to the ball's kinetic energy? It has gone to heat the fence, of course, and you realize that if the fence were quite colder, you might be able to measure that heat and determine just how energetic your swing really was. Calorimetry has been a standard measurement technique since James Joule and Julius von Mayer independently concluded, about 150 years ago, that heat is a form of energy. But only in the past 15 years or so has calorimetry been applied, at millikelvin temperatures, to the measurement of the energy of individual photons and particles with exquisite sensitivity. In this article, we have tried to show that continuing research in low-temperature physics leads to a greater understanding of high-temperature astrophysics. Adaptations of the resulting spectrometers will be useful tool for fields of research beyond astrophysics.
Document ID
19990070934
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Stahle, Caroline Kilbourne
(NASA Goddard Space Flight Center Greenbelt, MD United States)
McCammon, Dan
(Wisconsin Univ. Madison, WI United States)
Irwin, Kent D.
(National Inst. of Standards and Technology Boulder, CO United States)
Date Acquired
August 19, 2013
Publication Date
August 1, 1999
Publication Information
Publication: Physics Today
Publisher: American Inst. of Physics
Subject Category
Inorganic And Physical Chemistry
Distribution Limits
Public
Copyright
Other

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