1D Crossover, universality and finite-size scaling of the specific heat

We report measurements of the specific heat of 3He-4He mixtures near the superfluid transition when confined to channels of 1 /tm square cross section. These data test the universality of finite-size scaling as function of 3He concentration for 1D crossover. The analysis of these data requires that...

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Published inJournal of physics. Conference series Vol. 150; no. 3; p. 032062
Main Authors Mooney, K P, Kimball, M O, Gasparini, F M
Format Journal Article
LanguageEnglish
Published Bristol IOP Publishing 01.02.2009
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Abstract We report measurements of the specific heat of 3He-4He mixtures near the superfluid transition when confined to channels of 1 /tm square cross section. These data test the universality of finite-size scaling as function of 3He concentration for 1D crossover. The analysis of these data requires that data measured at fixed concentration be converted to a specific heat at constant chemical potential difference φ μ3 - μ4. This is carried out according to a procedure performed for planar mixtures by Kimball and Gasparini. We find that, in the most self-consistent analysis of the data, the mixtures define a separate scaling locus from that of pure 4He, both above and below Tλ. An analysis whereby the exponent a is forced to have the same universal value—as opposed to the best-fit value—yields a good collapse of all the data. This is achieved, however, at a cost of self-consistency. These results mirror very closely those obtained for finite-size scaling of confined planar mixtures, i.e. for 2D crossover.
AbstractList We report measurements of the specific heat of 3He-4He mixtures near the superfluid transition when confined to channels of 1 /tm square cross section. These data test the universality of finite-size scaling as function of 3He concentration for 1D crossover. The analysis of these data requires that data measured at fixed concentration be converted to a specific heat at constant chemical potential difference φ μ3 - μ4. This is carried out according to a procedure performed for planar mixtures by Kimball and Gasparini. We find that, in the most self-consistent analysis of the data, the mixtures define a separate scaling locus from that of pure 4He, both above and below Tλ. An analysis whereby the exponent a is forced to have the same universal value—as opposed to the best-fit value—yields a good collapse of all the data. This is achieved, however, at a cost of self-consistency. These results mirror very closely those obtained for finite-size scaling of confined planar mixtures, i.e. for 2D crossover.
Author Kimball, M O
Mooney, K P
Gasparini, F M
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Cites_doi 10.1103/PhysRevB.68.174518
10.1007/BF00115082
10.1103/PhysRev.177.952
10.1103/PhysRevLett.95.165701
10.1007/BF00117937
10.1016/0003-4916(68)90214-5
10.1063/1.1141166
10.1103/PhysRevB.17.1466
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References Mooney K P (2) 2006
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Gasparini F M (10) 2008
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  doi: 10.1103/PhysRevB.68.174518
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  year: 2008
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  publication-title: Rev. Mod. Phys.
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Snippet We report measurements of the specific heat of 3He-4He mixtures near the superfluid transition when confined to channels of 1 /tm square cross section. These...
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SubjectTerms Chemical potential
Crossovers
Data analysis
Fluids
Physics
Scaling
Specific heat
Superfluidity
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Title 1D Crossover, universality and finite-size scaling of the specific heat
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