On the Thermal Capacity of Solids

被引:6
作者
Feldhoff, Armin [1 ]
机构
[1] Leibniz Univ Hannover, Inst Phys Chem & Electrochem, Callinstr 3A, D-30167 Hannover, Germany
关键词
heat capacity; entropy capacity; susceptibility; Debye model; Sommerfeld coefficient; graphite; diamond; barium titanate; phase transition; reaction entropy; CALORIC THEORY; HEAT-CAPACITY; PRESSURE; DIAMOND;
D O I
10.3390/e24040479
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The term thermal capacity appears to suggest a storable thermal quantity. However, this claim is not redeemed when thermal capacity is projected onto "heat", which, like all energy forms, exits only in transit and is not a part of internal energy. The storable thermal quantity is entropy, and entropy capacity is a well-defined physical coefficient which has the advantage of being a susceptibility. The inverse of the entropy capacity relates the response of the system (change of temperature) to a stimulus (change of entropy) such as the fluid level responses to a change in amount of fluid contained in a vessel. Frequently, entropy capacity has been used implicitly, which is clarified in examples of the low-temperature analysis of phononic and electronic contributions to the thermal capacity of solids. Generally, entropy capacity is used in the estimation of the entropy of a solid. Implicitly, the thermoelectric figure of merit refers to entropy capacity. The advantage of the explicit use of entropy capacity comes with a descriptive fundamental understanding of the thermal behaviour of solids, which is made clear by the examples of the Debye model of phonons in solids, the latest thermochemical modelling of carbon allotropes (diamond and graphite) and not least caloric materials. An electrocaloric cycle of barium titanate close to its paraelectric-ferroelectric phase transition is analysed by means of entropy capacity. Entropy capacity is a key to intuitively understanding thermal processes.
引用
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页数:21
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共 52 条
  • [1] [Anonymous], 1960, AM J PHYS
  • [2] Ashcroft N.W., 2022, Cengage Learning
  • [3] Entropy-change measurement of electrocaloric effect of BaTiO3 single crystal
    Bai, Yang
    Ding, Kai
    Zheng, Guang-Ping
    Shi, San-Qiang
    Qiao, Lijie
    [J]. PHYSICA STATUS SOLIDI A-APPLICATIONS AND MATERIALS SCIENCE, 2012, 209 (05): : 941 - 944
  • [4] A New Description of Pure C in Developing the Third Generation of Calphad Databases
    Bigdeli, Sedigheh
    Chen, Qing
    Selleby, Malin
    [J]. JOURNAL OF PHASE EQUILIBRIA AND DIFFUSION, 2018, 39 (06) : 832 - 840
  • [5] Fantastic barocalorics and where to find them
    Boldrin, David
    [J]. APPLIED PHYSICS LETTERS, 2021, 118 (17)
  • [6] Buck W, 2011, SPRINGER HANDBOOK OF METROLOGY AND TESTING, 2ND EDITION, P453
  • [7] DIRECT CONVERSION OF GRAPHITE TO DIAMOND IN STATIC PRESSURE APPARATUS
    BUNDY, FP
    [J]. JOURNAL OF CHEMICAL PHYSICS, 1963, 38 (03) : 631 - &
  • [8] Callendar HL, 1911, P PHYS SOC LOND, V23, P153
  • [9] Electrocaloric effect in BaTiO3 thin films
    Cao, Hai-Xia
    Li, Zhen-Ya
    [J]. JOURNAL OF APPLIED PHYSICS, 2009, 106 (09)
  • [10] A review and analysis of the elasto-caloric effect for solidstate refrigeration devices: Challenges and opportunities
    Chauhan A.
    Patel S.
    Vaish R.
    Bowen C.R.
    [J]. MRS Energy and Sustainability - A Review Journal, 2015, 2 (1):