Heat capacity of xenon adsorbed on nanobundle grooves

被引:3
作者
Chishko, K. A. [1 ]
Sokolova, E. S. [1 ]
机构
[1] Natl Acad Sci Ukraine, BI Verkin Inst Low Temp Phys & Engn, Pr Nauki 47, UA-61103 Kharkov, Ukraine
关键词
CARBON NANOTUBE BUNDLES; LATTICE-DYNAMICS; ADSORPTION; GASES; THERMODYNAMICS; EQUILIBRIUM; METHANE; MODEL; HE-4;
D O I
10.1063/1.4941962
中图分类号
O59 [应用物理学];
学科分类号
摘要
A model of a one-dimensional nonideal gas in an external transverse force field is used to interpret the experimentally observed thermodynamic properties of xenon deposited in grooves on the surface of carbon nanobundles. A nonideal gas model with pairwise interactions is not entirely adequate for describing dense adsorbates (at low temperatures), but makes it easy to account for the exchange of particles between the 1D adsorbate and the 3D atmosphere, which is an important factor at intermediate (on the order of 35K for xenon) and, especially, high (similar to 100 K) temperatures. In this paper, we examine a 1D real gas taking only the one-dimensional Lennard-Jones interaction into account, but under exact equilibrium with respect to the number of particles between the 1D adsorbate and the 3D atmosphere of the measurement cell. The low-temperature branch of the specific heat is fitted independently by an elastic chain model so as to obtain the best agreement between theory and experiment over the widest possible region, beginning at zero temperature. The gas approximation sets in after temperatures for which the phonon specific heat of the chain essentially transforms to a one-dimensional equipartition law. Here the basic parameters of both models can be chosen so that the heat capacity C(T) of the chain transforms essentially continuously into the corresponding curve for the gas approximation. Thus, it can be expected that an adequate interpretation of the real temperature dependences of the specific heat of low-dimensionality atomic adsorbates can be obtained through a reasonable combination of the phonon and gas approximations. The main parameters of the gas approximation (such as the desorption energy) obtained by fitting the theory to experiments on the specific heat of xenon correlate well with published data. (C) 2016 AIP Publishing LLC.
引用
收藏
页码:85 / 93
页数:9
相关论文
共 52 条
[1]  
[Anonymous], 1971, Practical Quantum Mechanics I
[2]   Square lattice hard-core bosons within the random phase approximation [J].
Antsygina, T. N. ;
Poltavskaya, M. I. ;
Poltavsky, I. I. ;
Chishko, K. A. .
PHYSICAL REVIEW B, 2009, 80 (17)
[3]   Thermodynamics of low-dimensional adsorption in grooves, on the outer surface, and in interstitials of a closed-ended carbon nanotube bundle [J].
Antsygina, T. N. ;
Poltavsky, I. I. ;
Chishko, K. A. .
PHYSICAL REVIEW B, 2006, 74 (20)
[4]  
Antsygina T. N., FIZ NIZK TEMP
[5]  
Antsygina T. N., 2004, FIZ TVERD TELA, V46, P1081
[6]  
Antsygina T. N., 1988, TMF, V77, P234
[7]   Dynamics and thermodynamics of quasi-one-dimensional helium deposited on carbon nano-bundles [J].
Antsygina, TN ;
Poltavsky, II ;
Chishko, KA .
JOURNAL OF LOW TEMPERATURE PHYSICS, 2005, 138 (1-2) :223-228
[8]   Thermodynamics of quasi-one-dimensional deposits on carbon nanobundles [J].
Antsygina, TN ;
Poltavsky, II ;
Chishko, KA ;
Wilson, TA ;
Vilches, OE .
LOW TEMPERATURE PHYSICS, 2005, 31 (12) :1007-1016
[9]   Lattice dynamics and heat capacity of a two-dimensional monoatomic crystal on a substrate [J].
Antsygina, TN ;
Poltavsky, II ;
Poltavskaya, MI ;
Chishko, KA .
LOW TEMPERATURE PHYSICS, 2002, 28 (06) :442-451
[10]   Experimental low-temperature heat capacity of one-dimensional xenon adsorbate chains in the grooves of carbon c-SWNT bundles [J].
Bagatskii, M. I. ;
Manzhelii, V. G. ;
Sumarokov, V. V. ;
Barabashko, M. S. .
LOW TEMPERATURE PHYSICS, 2013, 39 (07) :618-621