Relationship between isobaric and isochoric thermal conductivity of solids
DOI (Low Temperature Physics):
https://doi.org/10.1063/10.0044467Ключові слова:
thermal conductivity, pressure dependence, Bridgman parameterАнотація
За останні роки досягнуто значних успіхів у розумінні механізмів теплопередачі в твердих тілах залежно від ступеня впорядкування речовин. Водночас, при обговоренні експериментальних результатів вплив теплового розширення найчастіше ігнорується, хоча теоретичні розрахунки зазвичай проводяться для постійного об’єму. Залежність теплопровідності від тиску (густини) також відносно мало вивчена для багатьох речовин. У даній статті ці питання на сьогоднішній день детально аналізуються, а також обговорюється різниця між поведінкою ізохорної та ізобарної теплопровідності твердих тіл. Розгляд обмежується областю відносно низьких тисків до 1 ГПа за відсутності фазових переходів, індукованих тиском, та температурним діапазоном порядку температур Дебая та вище. Результати представлено для широкого спектру твердих тіл: ковалентних, напівпровідникових та іонних кристалів, металів, орієнтаційно впорядкованих та невпорядкованих фаз молекулярних кристалів, клатратгідратів, аморфних твердих тіл та полімерів.
Посилання
1. P. W. Bridgman, “The effect of pressure on the thermal conductivity of metals,” Proc. Am. Acad. Arts Sci. 57, 77 (1922). https://doi.org/10.2307/20025893
2. P. W. Bridgman, “Thermal conductivity and compressibility of several rocks under high pressure,” Am. J. Sci. 7, 81 (1924). https://doi.org/10.2475/ajs.s5-7.38.81
3. C. Starr, “The pressure coefficient of thermal conductivity of metals,” Phys. Rev. 54, 210 (1938). https://doi.org/10.1103/PhysRev.54.210
4. H. Mao, X. Chen, Y. Ding, B. Li, and L. Wang, “Solids, liquids, and gases under high pressure,” Rev. Mod. Phys. 90, 015007 (2018). https://doi.org/10.1103/RevModPhys.90.015007
5. R. G. Ross, P. Andersson, B. Sundqvist, and G. Bäckström, “Thermal conductivity of solids and liquids under pressure,” Rep. Prog. Phys. 47, 1347 (1984). https://doi.org/10.1088/0034-4885/47/10/002
6. Y. Zhou, Z. Dong, W. Hsieh, A. F. Goncharov, and X. Chen, “Thermal conductivity of materials under pressure,” Nat. Rev. Phys. 4, 319 (2022). https://doi.org/10.1038/s42254-022-00423-9
7. J. Ranninger, “Lattice thermal conductivity,” Phys. Rev. 140, A2031 (1965). https://doi.org/10.1103/PhysRev.140.A2031
8. G. A. Slack, in Proceedings of International Conference on Phonon Scattering in Solids, edited by H. J. Albany (Service de documentation du CEN, Saclay, 1972), p. 24.
9. F. Clayton and D. N. Batchelder, “Temperature and volume dependence of the thermal conductivity of solid argon,” J. Phys. C: Solid State Phys. 6, 1213 (1973). https://doi.org/10.1088/0022-3719/6/7/012
10. V. A. Konstantinov, “Heat transfer in molecular crystals,” in Heat Transfer — Theoretical Analysis, Experimental Investigations and Industrial Systems, edited by Aziz Belmiloudi (“InTech” Open Access Publisher, 2011), p. 157.
11. K. E. Goodson, “Ordering up the minimum thermal conductivity of solids,” Science 315, 342 (2007). https://doi.org/10.1126/science.1138067
12. Q. Zheng, M. Hao, R. Miao, J. Schaadt, and C. Dames, “Advances in thermal conductivity for energy applications: A review,” Prog. Energy 3, 012002 (2021). https://doi.org/10.1088/2516-1083/abd082
13. G. A. Slack, “The thermal conductivity of nonmetallic crystals,” Solid State Phys. 34, 1 (1979). https://doi.org/10.1016/S0081-1947(08)60359-8
14. D. G. Cahill, S. K. Watson, and R. O. Pohl, “Lower limit to the thermal conductivity of disordered crystals,” Phys. Rev. B 46, 6131 (1992). https://doi.org/10.1103/PhysRevB.46.6131
15. P. B. Allen, J. L. Feldman, J. Fabian, and F. Wooten, “Diffusons, locons and propagons: Character of atomic vibrations in amorphous Si,” Philos. Mag. B 79, 1715 (1999). https://doi.org/10.1080/13642819908223054
16. P. B. Allen and J. L. Feldman, “Thermal conductivity of disordered harmonic solids,” Phys. Rev. B 48, 12581 (1993). https://doi.org/10.1103/PhysRevB.48.12581
17. A. J. H. McGaughey and M. Kaviany, “Phonon transport in molecular dynamics simulations: Formulation and thermal conductivity prediction,” Adv. Heat Trans. 39, 169 (2006). https://doi.org/10.1016/S0065-2717(06)39002-8
18. M. C. Wingert, J. Zheng, S. Kwon, and R. Chen, “Thermal transport in amorphous materials: A review,” Semiconduct. Sci. Technol. 31, 11300 (2016). https://doi.org/10.1088/0268-1242/31/11/113003
19. F. DeAngelis, M. G. Muraleedharan, J. Moon, H. R. Seyf, A. J. Minnich, A. J. H. McGaughey, A. Henry, G. J. Snyder, M. T. Agne, and R. Gurunathan, “Thermal transport in disordered materials,” Nanosc. Microsc. Thermophys. Eng. 23, 81 (2019). https://doi.org/10.1080/15567265.2018.1519004
20. L. Isaeva, G. Barbalinardo, D. Donadio, and S. Baroni, “Modeling heat transport in crystals and glasses from a unified lattice-dynamical approach,” Nat. Commun. 10, 3853 (2019). https://doi.org/10.1038/s41467-019-11572-4
21. M. Simoncelli, N. Marzari, and F. Mauri, “Unified theory of thermal transport in crystals and glasses,” Nat. Phys. 15, 809 (2019). https://doi.org/10.1038/s41567-019-0520-x
22. M. Simoncelli, N. Marzari, and F. Mauri, “Wigner formulation of thermal transport in solids,” Phys. Rev. X 12, 041011 (2022). https://doi.org/10.1103/PhysRevX.12.041011
23. M. Simoncelli, N. Marzari, and F. Mauri, “Thermal conductivity of glasses: First principles theory and applications,” Comput. Mater. 9, 106 (2023). https://doi.org/10.1038/s41524-023-01033-4
24. R. Hanus, R. Gurunathan, L. Lindsay, M. T. Agne, J. Shi, S. Graham, and G. J. Snyder, “Thermal transport in defective and disordered materials,” Appl. Phys. Rev. 8, 031311 (2021). https://doi.org/10.1063/5.0055593
25. R. Hanus, J. George, M. Wood, A. Bonkowski, Y. Cheng, D. L. Abernathy, M. E. Manley, G. Hautier, G. J. Snyder, and R. P. Hermann, “Uncovering design principles for amorphous-like heat conduction using two-channel lattice dynamics,” Mater. Today Phys. 18, 100344 (2021).https://doi.org/10.1016/j.mtphys.2021.100344
26. Y. Xia, D. Gaines, J. He, K. Pal, Z. Li, M. G. Kanatzidis, V. Ozolinš, and C. Wolverton, “A unified understanding of minimum lattice thermal conductivity,” Appl. Phys. Sci. 120, e2302541120 (2023). https://doi.org/10.1073/pnas.2302541120
27. M. T. Agne, R. Hanus, and G. J. Snyder, “Minimum thermal conductivity in the context of diffuson-mediated thermal transport,” Energy Environ. Sci. 11, 609 (2018). https://doi.org/10.1039/C7EE03256K
28. Y. V. Horbatеnko, O. O. Romantsova, O. A. Korolyuk, A. Jeżowski, D. Szewczyk, J. L. Tamarit, and A. I. Krivchikov, “Anomalous behavior of thermal conductivity at high temperatures for molecular crystals composed of flexible molecules,” J. Phys. Chem. Solids 127, 151 (2019). https://doi.org/10.1016/j.jpcs.2018.12.017
29. A. Krivchikov, O. Andersson, O. Korolyuk, and O. Kryvchikov, “Thermal conductivity of solid triphenyl phosphite,” Molecules 27, 8399 (2022). https://doi.org/10.3390/molecules27238399
30. A. I. Krivchikov, Yu. V. Horbatnko, O. A. Korolyuk, O. O. Romantsova, O. O. Kryvchikov, D. Szewczyk, and A. Jezowski, “Exponential approximation of the coherence contribution to the thermal conductivity of complex clathrate-type crystals,” Materialia 32, 101944 (2023). https://doi.org/10.1016/j.mtla.2023.101944
31. A. I. Krivchikov and O. A. Korolyuk, “Empirical universal approach to describing the thermal conductivity of amorphous polymers: Effects of pressure, radiation and the meyer–neldel rule,” Low Temp. Phys. 50, 328 (2024) [Fiz. Nyzk. Temp. 50, 356 (2024)]. https://doi.org/10.1063/10.0025299
32. A. I. Krivchikov, A. Jeżowski, V. A. Konstantinov, V. V. Sagan, O. A. Korolyuk, and D. Szewczyk, “Enhancing thermal transport in ABS polymer with graphene oxide: Insights into low-temperature thermal conductivity behavior and correlation with boson peak anomaly,” Thermochim. Acta 733, 179696 (2024). https://doi.org/10.1016/j.tca.2024.179696
33. Z. Sun, K. Yuan, X. Zhang, and D. Tang, “Pressure tuning of the thermal conductivity of gallium arsenide from first-principles calculations,” Phys. Chem. Chem. Phys. 20, 30331 (2018). https://doi.org/10.1039/C8CP05858J
34. L. Lindsay, D. A. Broido, J. Carrete, N. Mingo, and T. L. Reinecke, “Anomalous pressure dependence of thermal conductivities of large mass ratio compounds,” Phys. Rev. B 91, 121202(R) (2015). https://doi.org/10.1103/PhysRevB.91.121202
35. O. Andersson, M. Saiduzzaman, P. H. B. B. Carvalho, and U. Haussermann, “Amorphous-like thermal conductivity and high mechanical stability of cyclopentane clathrate hydrate,” Phys. Chem. Chem. Phys. 26, 16017 (2024). https://doi.org/10.1039/D4CP01656D
36. H. Yu, L. C. Chen, H. J. Pang, X. Y. Qin, P. F. Qiu, X. Shi, L. D. Chen, and X. J. Chen, “Large enhancement of thermoelectric performance in CuInTe2 upon compression,” Mater. Today Phys. 5, 1 (2018). https://doi.org/10.1016/j.mtphys.2018.04.002
37. R. Berman, Thermal Conduction in Solids (Clarendon, Oxford, 1976).
38. D. R. Clarke, “Materials selection guidelines for low thermal conductivity thermal barrier coatings,” Surf. Coat. Techn. 163–164, 67 (2003). https://doi.org/10.1016/S0257-8972(02)00593-5
39. G. A. Slack, “Nonmetallic crystals with high thermal conductivity,” J. Phys. Chem. Solids 34, 321 (1973). https://doi.org/10.1016/0022-3697(73)90092-9
40. D. A. Broido, L. Lindsay, and A. Ward, “Thermal conductivity of diamond under extreme pressure: A first-principles study,” Phys. Rev. B 86, 115203 (2012). https://doi.org/10.1103/PhysRevB.86.115203
41. P. Jacobson and S. Stoupin, “Thermal expansion coefficient of diamond in a wide temperature range,” Diamond and Related Materials 97, 107469 (2019). https://doi.org/10.1016/j.diamond.2019.107469
42. R. R. Reeber and K. Wang, “Thermal expansion, molar volume and specific heat of diamond from 0 to 3000 K,” J. Electron. Mater. 25, 63 (1996). https://doi.org/10.1007/BF02666175
43. Acoustic Crystals, edited by A. A. Blistanov, V. S. Bondarenko, N. V. Perelomova, F. N. Strizhevskaia, V. V. Chkalova, and M. P. Shaskolskaia (Izdatel’stvo, Nauka, 1982), p. 632.
44. T. Middelmann, A. Walkov, G. Bartl, Guido, and R. Schodel, “Thermal expansion coefficient of single-crystal silicon from 7 to 293 K,” Phys. Rev. B 92, 174113 (2015). https://doi.org/10.1103/PhysRevB.92.174113
45. T. Soma, “Temperature dependence of the grüneisen constant of Si and Ge,” Physica Status Solidi B 82, 319 (1977). https://doi.org/10.1002/pssb.2220820136
46. S. Andersson and G. Backstrom, “The thermal conductivity and heat capacity of single-crystal Si under hydrostatic pressure,” J. Phys. C: Solid State Phys. 21, 3727 (1988). https://doi.org/10.1088/0022-3719/21/20/008
47. C. J. Glassbrenner and G. A. Slack, “Thermal conductivity of silicon and germanium from 3 K to the melting point,” Phys. Rev. A 134, 1058 (1964). https://doi.org/10.1103/PhysRev.134.A1058
48. O. N. Koroleva, M. M. Demin, A. V. Mazhukin, and V. I. Mazhukin, “Modeling of electronic and phonon thermal conductivity of silicon in a wide temperature range,” J. Phys.: Conf. Ser. 1787, 012026 (2021). https://doi.org/10.1088/1742-6596/1787/1/012026
49. K. C. Mills and L. Courtney, “Thermophysical properties of silicon,” ISIJ Inter. 40, S130 (2000). https://doi.org/10.2355/isijinternational.40.Suppl_S130
50. R. K. Crouch, A. L. Fripp, W. J. Debnam, R. E. Taylor, and H. Groot, “Thermophysical properties of germanium for thermal analysis of growth from the melt,” MRS Online Proceedings Library 9, 657 (1981). https://doi.org/10.1557/PROC-9-657
51. P. I. Baranskii, P. P. Kogutyuk, and V. V. Savyak, “Thermal conductivity of n-type germanium and silicon under strong axial elastic deformation,” Fiz. Tekh. Polupr. 15, 1826 (1981) [Engl. Transl. Sov. Phys.-Semicond. 5, 1954 (1981)].
52. G. Guo, X. Yang, J. Carrete, and W. Li, “Revisiting the thermal conductivity of Si, Ge and diamond from first principles: Roles of atomic mass and interatomic potential,” J. Phys.: Condens. Matter 33, 285702 (2021). https://doi.org/10.1088/1361-648X/abfd4e
53. Z. Tong, S. Li, X. Ruan, and H. Bao, “Comprehensive first-principles analysis of phonon thermal conductivity and electron-phonon coupling in different metals,” Phys. Rev. B 100, 144306 (2019). https://doi.org/10.1103/PhysRevB.100.144306
54. Y. Wang, Z. Lu, and X. Ruan, “First principles calculation of lattice thermal conductivity of metals considering phonon-phonon and phonon-electron scattering,” J. Appl. Phys. 119, 225109 (2016). https://doi.org/10.1063/1.4953366
55. F. Sun, S. Mishra, U. Stockert, R. Daou, N. Kikugawa, R. S. Perry, E. Hassinger, S. A. Hartnoll, A. P. Mackenzie, and V. Sunko, “The lorenz ratio as a guide to scattering contributions to transport in strongly correlated metals,” Proc. Natl. Acad. Sci. U.S.A. 121, e2318159121 (2024). https://doi.org/10.1073/pnas.2318159121
56. L. Bohlin, “Thermal conduction of metals at high pressure,” Solid State Commun. 19, 389 (1976). https://doi.org/10.1016/0038-1098(76)91359-4
57. B. Sundqvist, “The thermal conductivity metals under pressure,” in: Mat. Res. Soc. Simpos. Proc. 22, 261 (1984).
58. X. Zhang, S. Li, A. Wang, and H. Bao, “Pressure-dependent thermal conductivity in Al, W, and Pt: Role of electrons and phonons,” Phys. Rev. B 106, 094313 (2022). https://doi.org/10.1103/PhysRevB.106.094313
59. C. Y. Ho, R. W. Powell, and P. E. Liley, “Thermal conductivity of the elements,” J. Phys. Chem. Ref. Data 1, 279 (1972). https://doi.org/10.1063/1.3253100
60. N. V. Kozyrev and V. V. Gordeev, “Thermodynamic properties and equation of state for solid and liquid aluminum,” Metals 12, 1346 (2022). https://doi.org/10.3390/met12081346
61. N. V. Kozyrev, “Thermodynamic properties and equation of state for solid and liquid silver,” Int. J. Thermophys. 44, 143 (2023). https://doi.org/10.1007/s10765-023-03251-w
62. M. G. Pamato, I. G. Wood, D. P. Dobson, S. A. Hunt, and L. Vocadlo, “The thermal expansion of gold: Point defect concentrations and pre-melting in a face-centred cubic metal,” J. Appl. Cryst. 51, 470 (2018). https://doi.org/10.1107/S1600576718002248
63. N. V. Kozyrev, “Thermodynamic properties and equation of state for solid and liquid copper,” Int. J. Thermophys. 44, 31 (2023). https://doi.org/10.1007/s10765-022-03136-4
64. R. N. Abdullaev, Y. M. Kozlovskii, R. A. Khairulin, and S. V. Stankus, “Density and thermal expansion of high purity nickel over the temperature range from 150 K to 2030K,” Int. J. Thermophys. 36, 603 (2015). https://doi.org/10.1007/s10765-015-1839-x
65. N. V. Kozyrev and V. V. Gordeev, “Thermodynamic characterization and equation of state for solid and liquid lead,” Metals 12, 16 (2021). https://doi.org/10.3390/met12010016
66. R. K. Kirby, “Platinum—A thermal expansion reference material,” Int. J. Thermophys. 12, 679 (1991). https://doi.org/10.1007/BF00534223
67. N. V. Kozyrev and V. V. Gordeev, “Thermodynamic properties and equation of state for tungsten,” Crystals 13, 1470 (2023). https://doi.org/10.3390/cryst13101470
68. S. I. Novikova, Thermal Expansion of Solids (Nauka, 1974), p. 291.
69. R. G. Ross, P. Andersson, and G. Bäckström, “Thermal conductivity and heat capacity of solid AgCl under pressure,” Int. J. Thermophys. 2, 289 (1981). https://doi.org/10.1007/BF00504190
70. R. G. Ross and P. Andersson, “Thermal conductivity and heat capacity of solid silver bromide (AgBr) under pressure,” Int. J. Thermophys. 2, 331 (1981). https://doi.org/10.1007/BF00498764
71. D. Gerlich and P. Andersson, “Temperature and pressure effects on the thermal conductivity and heat capacity of CsCl, CsBr, and CsI,” J. Phys. C: Solid State Phys. 15, 5211 (1982). https://doi.org/10.1088/0022-3719/15/25/013
72. P. Andersson, “Thermal conductivity under pressure and through phase transitions in solid alkali halides, I. experimental results for KCl, KBr, KI, RbCl, RbBr, and RbI,” J. Phys. C: Solid State Phys. 18, 3943 (1985). https://doi.org/10.1088/0022-3719/18/20/020
73. I. Sigalas, B. Håkanson, and P. Andersson, “Thermal conductivity and heat capacity of solid NaBr under pressure,” Int. J. Thermophys. 6, 177 (1985). https://doi.org/10.1007/BF00500030
74. J. Pierrus and I. Sigalas, “Thermophysical properties of the sodium halides under pressure,” J. Phys. C: Solid State Phys. 19, 1465 (1986). https://doi.org/10.1088/0022-3719/19/10/003
75. B. Håkansson, and P. Andersson, “Thermal conductivity and heat capacity of solid NaCl and NaI under pressure,” J. Phys. Chem. Solids 47, 355 (1986). https://doi.org/10.1016/0022-3697(86)90025-9
76. R. J. Gummow, and I. Sigalas, “Temperature and pressure effects on the thermal conductivity of TlCl and TlBr,” Int. J. Thermophys. 8, 607 (1987). https://doi.org/10.1007/BF00503646
77. D. Gerlich, “Pressure dependence of the thermal conductivity of insulators,” J. Phys. C: Solid State Phys. 15, 4305 (1982). https://doi.org/10.1088/0022-3719/15/20/015
78. G. A. Slack and R. G. Ross, “Thermal conductivity under pressure and through phase transitions in solid alkali halides: II. theory,” J. Phys. C: Solid State Phys. 18, 3957 (1985). https://doi.org/10.1088/0022-3719/18/20/021
79. D. Gerlich, “The pressure dependence of the thermal conductivity of insulators — the callaway integral versus the leibfried–schlomann formula,” J. Phys. C: Solid State Phys. 19, 2877 (1986). https://doi.org/10.1088/0022-3719/19/16/008
80. S. Pettersson, “Calculation of the thermal conductivity of alkali halide crystals,” J. Phys. C: Solid State Phys. 20, 1047 (1987). https://doi.org/10.1088/0022-3719/20/8/008
81. S. Pettersson, “The minimum thermal conductivity of alkali halides,” J. Phys.: Condens. Matter 1, 361 (1989). https://doi.org/10.1088/0953-8984/1/2/004
82. S. Pettersson, “Comparisons between shell and deformation dipole models for the thermal conductivity of alkali halides and its volume dependence,” J. Phys.: Condens. Matter l, 347 (1989). https://doi.org/10.1088/0953-8984/1/2/003
83. T. Liang, W. Chen, C. E. Hu, X. R. Chen, and Q. F. Chen, “Lattice dynamics and thermal conductivity of lithium fluoride via first-principles calculations,” Solid State Commun. 272, 28 (2018). https://doi.org/10.1016/j.ssc.2018.01.004
84. M. Goyal, “Model to determine thermal conductivity at high pressure and temperature,” Pramana – J. Phys. 96, 94 (2022). https://doi.org/10.1007/s12043-022-02324-z
85. M. Salanne, D. Marrocchelli, C. Merlet, N. Ohtori, and P. A. Madden, “Thermal conductivity of ionic systems from equilibrium molecular dynamics,” J. Phys.: Condens. Matter 23, 102101 (2011). https://doi.org/10.1088/0953-8984/23/10/102101
86. S. K. Sharma, S. K. Srivastava, and B. S. Sharma, “Thermal conductivity of solids at high temperatures and high pressures,” Inter. J. Modern Phys. B 21, 4419 (2007). https://doi.org/10.1142/S021797920703779X
87. X. Wang, M. Feng, Y. Xia, J. Sun, X. Ding, B. Li, and Z. Gao, “Revisiting lattice thermal conductivity of CsCl: The crucial role of quartic anharmonicity,” Appl. Phys. Lett. 124, 172201 (2024). https://doi.org/10.1063/5.0201393
88. A. E. Gheribi and P. Chartrand, “Application of the CALPHAD method to predict the thermal conductivity in dielectric and semiconductor crystals,” Calphad 39, 70 (2012). https://doi.org/10.1016/j.calphad.2012.06.002
89. Y. Shen, C. N. Saunders, C. M. Bernal, D. L. Abernathy, M. E. Manley, and B. Fultz, “Anharmonic origin of the giant thermal expansion of NaBr,” Phys. Rev. Lett. 125, 085504 (2020). https://doi.org/10.1103/PhysRevLett.125.085504
90. A. S. M. Rao, K. Narender, K. G. K. Rao, and N. G. Krishna, “Thermophysical properties of NaCl, NaBr, and NaF by γ-ray attenuation technique,” J. Mod. Phys. 04, 208 (2013). https://doi.org/10.4236/jmp.2013.42029
91. K. K. Srivastava and H. D. Merchant, “Thermal expansion of alkali halides above 300 K,” J. Phys. Chem. Solids 34, 2069 (1973). https://doi.org/10.1016/S0022-3697(73)80055-1
92. H. D. Merchant, K. K. Srivastava, and H. D. Pandey, “Equations of state and thermal expansion of alkali halides,” CRC Critical Rev. Sol. Stat. Sci. 3–4, 451 (1973). https://doi.org/10.1080/10408437308244871
93. S. Ammiraju, R. Madhusudhan, K. Narender, K. G. K. Rao, and N. G. Krishna, “Thermophysical properties of rubidium and lithium halides by γ-ray attenuation technique,” High Temp. 52, 640 (2014). https://doi.org/10.1134/S0018151X14020023
94. Ü Akdere, “Thermal expansion and heat capacities of AgBr and AgCl at solid and liquid phases from molecular dynamics simulation,” Inter. J. Modern Phys. B 29, 14 (2015). https://doi.org/10.1142/S0217979215500915
95. S. Andersson and G. Bäckström, “Techniques for determining thermal conductivity and heat capacity under hydrostatic pressure,” Rev. Sci. Instrum. 57, 1633 (1986). https://doi.org/10.1063/1.1138542
96. D. A. Dalton, W. Hsieh, G. T. Hohensee, D. G. Cahill, and A. F. Goncharov, “Effect of mass disorder on the lattice thermal conductivity of MgO periclase under pressure,” Sci. Rep. 3, 2400 (2013). https://doi.org/10.1038/srep02400
97. A. M. Hofmeister, “Thermal diffusivity and thermal conductivity of single-crystal MgO and Al2O3 and related compounds as a function of temperature,” Phys. Chem. Minerals 41, 361 (2014). https://doi.org/10.1007/s00269-014-0655-3
98. L. S. Dubrovinsky and S. K. Saxena, “Thermal expansion of periclase (MgO) and tungsten (W) to melting temperatures,” Phys. Chem. Minerals 24, 547 (1997). https://doi.org/10.1007/s002690050070
99. W. Tang, “A model for estimation of thermal conductivity of nonmetal crystals,” J. Phys. Chem. Solids 62, 1943 (2001). https://doi.org/10.1016/S0022-3697(01)00032-4
100. G. Fiquet, P. Richet, and G. Montagnac, “High-temperature thermal expansion of lime, periclase, corundum and spinel,” Phys. Chem. Minerals 27, 10 (1999). https://doi.org/10.1007/s002690050246
101. A. Fransson and R. G. Ross, “Thermal conductivity, heat capacity and phase stability of solid sodium chlorate (NaClO3) under pressure,” J. Phys. C: Solid State Phys. 16, 2861 (1983). https://doi.org/10.1088/0022-3719/16/15/007
102. K. G. Subhadra and K. A. Hussain, “X-ray determination of thermal expansion of Na(ClO3)x(BrO3)1−x mixed crystals,” Cryst. Res. Technol. 22, 1165 (1987). https://doi.org/10.1002/crat.2170220914
103. S. Andersson and G. Bäckström, “Thermal conductivity and heat capacity of single-crystal LiF and CaF2 under hydrostatic pressure,” J. Phys. C: Solid State Phys. 20, 5951 (1987). https://doi.org/10.1088/0022-3719/20/35/011
104. R. B. Roberts and G. K. White, “Thermal expansion of fluorites at high temperatures,” J. Phys. C: Solid State Phys. 19, 7167 (1986). https://doi.org/10.1088/0022-3719/19/36/008
105. X. Xiong, E. J. Ragasa, A. Chernatynskiy, D. Tang, and S. R. Phillpot, “Lattice thermal conductivity of quartz at high pressure and temperature from the boltzmann transport equation,” J. Appl. Phys. 126, 215106 (2019). https://doi.org/10.1063/1.5114992
106. R. J. Ackermann and C. A. Sorrell, “Thermal expansion and the high–low transformation in quartz. I. high-temperature X-ray studies,” J. Appl. Cryst. 7, 461 (1974). https://doi.org/10.1107/S0021889874010211
107. Rare Gas Solids, edited by M. L. Klein, and J. A. Venables (Academic Press, London, New York, San Francisco, 1977), Vol. I and II.
108. V. A. Konstantinov, V. G. Manzhelii, M. A. Strzhemechnyi, and S. A. Smirnov, “The λ ∝ 1/T law and isochoric thermal conductivity of rare gas crystals,” Sov. J. Low Temp. Phys. 14, 48 (1988) [Fiz. Nizk. Temp. 14, 90 (1988)]. https://doi.org/10.1063/10.0031861
109. Structure and Termodynamic Properties of Cryocrystals: Handbook, edited by, V. G. Gavrilko, A. P. Isakina, V. G. Manzhelii, and A. I. Prokhvatilov, (New York, Walingford, U.K., Begell House, 1999), p. 316.
110. Physics of Cryocrystals, edited by V. G. Manzhelii, A. I. Erenburg, Yu. A. Freiman et al (AIP Press, Amer. Inst. of Physics, Woodbury, New York, 1996), p. 691.
111. V. A. Konstantinov, V. G. Manzhelii, S. A. Smirnov, and A. M. Tolkachev, “Heat transfer in solid CO2 and N2O: Dependence on temperature and volume,” Sov. J. Low Temp. Phys. 14, 104 (1988) [Fiz. Nizk. Temp. 14, 189 (1988)]. https://doi.org/10.1063/10.0031877
112. M. Saiduzzaman, V. A. Konstantinov, and O. Andersson, “Thermal conductivity of solid carbon dioxide,” Int. J. Thermophys. 46, 70 (2025). https://doi.org/10.1007/s10765-025-03541-5
113. V. A. Konstantinov, V. G. Manzhelii, V. P. Revyakin, and V. V. Sagan, “Isochoric thermal conductivity of solid nitrogen,” Low Temp. Phys. 31, 419 (2005) [Fiz. Nizk. Temp. 31, 553 (2005)]. https://doi.org/10.1063/1.1925369
114. V. A. Konstantinov, V. G. Manzhelii, V. P. Revyakin, and V. V. Sagan, “Isochoric thermal conductivity of solid carbon oxide: The role of phonons and “diffusive” modes,” J. Phys. C 18, 9901 (2006). https://doi.org/10.1088/0953-8984/18/43/011
115. V. A. Konstantinov, V. G. Manzhelii, V. P. Revyakin, and V. V. Sagan, “Heat transfer in γ-phase of oxygen,” JLTP 139, 703 (2005). https://doi.org/10.1007/s10909-005-5482-y
116. V. A. Konstantinov, V. G. Manzhelii, and S. A. Smirnov, “Influence of rotational motion of molecules on heat transfer in solid SF6,” Low Temp. Phys. 18, 902 (1992) [Fiz. Nizk. Temp. 18, 1290 (1992)]. https://doi.org/10.1063/10.0033322
117. A. P. Isakina, A. I. Prokhvatilov, and J. Rodriguez-Carvajal, “Structure and thermal expansion of the low-temperature phase of SF6,” Low Temp. Phys. 26, 296 (2000) [Fiz. Nizk. Temp. 26, 404 (2000)]. https://doi.org/10.1063/1.593926
118. V. A. Konstantinov, V. G. Manzhelii, V. P. Revyakin, and S. A. Smirnov, “Heat transfer in the orientationally disordered phase of solid methane,” Physica B 262, 421 (1999). https://doi.org/10.1016/S0921-4526(98)01179-X
119. V. M. Kozhin, “The magnitude of density jumps during phase transitions in carbon tetrachloride,” Sov. J. Crystallography 14, 732 (1969).
120. R. G. Ross and P. Andersson, “Thermal conductivity and phase diagram of CCl4 under pressure,” Mol. Phys. 36, 39 (1978). https://doi.org/10.1080/00268977800101381
121. V. A. Konstantinov, V. G. Manzhelii, and S. A. Smirnov, “Isochoric thermal conductivity and thermal pressure of solid CCl4,” Physica Status Solidi B 163, 369 (1991). https://doi.org/10.1002/pssb.2221630206
122. V. I. Kuchnev, A. M. Tolkachev, and V. G. Manzhelii, “Thermal expansion of CBr4 single crystals,” Sov. J. F.T.T. 17, 615 (1975). https://doi.org/10.1002/pssb.2221630206
123. P. Andersson and R. G. Ross, “Thermal resistivity, heat capacity and phase diagram of CBr4 under pressure,” Mol. Phys. 39, 1359 (1980). https://doi.org/10.1080/00268978000101121
124. B. H. Torrie, O. S. Binbrek, and B. M. Powell, “Structure of solid fluoroform,” Mol. Phys. 87, 1007 (1996). https://doi.org/10.1080/00268979600100691
125. V. A. Konstantinov, A. V. Karachevtseva, V. P. Revyakin, and V. V. Sagan, “Phase V–T diagrams of solid freons. part II: Halomethanes,” Low Temp. Phys. 48, 840 (2022) [Fiz. Nizk. Temp. 48, 950 (2022)]. https://doi.org/10.1063/10.0014028
126. V. A. Konstantinov, V. P. Revyakin, and V. V. Sagan, “Heat transfer in solid halogenated methanes: Trifluoromethane,” Low Temp. Phys. 35, 286 (2009) [Fiz. Nizk. Temp. 35, 376 (2009)]. https://doi.org/10.1063/1.3115809
127. V. A. Konstantinov, V. G. Manzhelii, and S. A. Smirnov, “Isochoric thermal conductivity of solid CHCl3 and CH2Cl2, The role of rotational motion of molecules,” Sov. J. Low Temp. Phys. 17, 462 (1991) [Fiz. Nizk. Temp. 17, 883 (1991)]. https://doi.org/10.1063/10.0032871
128. V. A. Konstantinov, V. G. Manzhelii, V. P. Revaykin, and S. A. Smirnov, “Isochoric thermal conductivity of solid freons CF2Cl2 and CHF2Cl of methane series,” Sov. J. Low Temp. Phys. 21, 78 (1995) [Fiz. Nizk. Temp. 21, 102 (1995)]. https://doi.org/10.1063/10.0033761
129. V. A. Konstantinov, A. V. Karachevtseva, V. P. Revyakin, and V. V. Sagan, “Phase V–T diagrams of fluorinated ethanes,” Low Temp. Phys. 48, 556 (2022) [Fiz. Nizk. Temp. 48, 625 (2022)]. https://doi.org/10.1063/10.0011604
130. V. A. Konstantinov, V. P. Revyakin, and V. V. Sagan, “Methyl group rotation and thermal conductivity of molecular crystals: Ethane,” Low Temp. Phys. 32, 689 (2006) [Fiz. Nizk. Temp. 32, 905 (2006)]. https://doi.org/10.1063/1.2216284
131. N. A. Klimenko, N. N. Galtsov, and A. I. Prochvatilov, “Phase transition and heat expansion of hexafluoroethane,” Low Temp. Phys. 37, 163 (2011) [Fiz. Nizk. Temp. 37, 202 (2011)]. https://doi.org/10.1063/1.3556663
132. V. A. Konstantinov, V. P. Revyakin, and V. V. Sagan, “Heat transfer in the “plastic” phase of hexafluoroethane,” Low Temp. Phys. 33, 1048 (2007) [Fiz. Nizk. Temp. 33, 1378 (2007)]. https://doi.org/10.1063/1.2747090
133. V. A. Konstantinov, A. I. Krivchikov, A. V. Karachevtseva, and V. V. Sagan, “Thermal transport in dynamically disordered phases of molecular crystals: A thermoactivation mechanism,” Solid State Commun. 329, 114241 (2021). https://doi.org/10.1016/j.ssc.2021.114241
134. V. A. Konstantinov, A. I. Krivchikov, V. V. Sagan, and A. Karachevtseva, “Hopping mechanism of heat transfer in cyclic hydrocarbons,” Low Temp. Phys. 49, 548 (2023) [Fiz. Nyzk. Temp. 49, 599 (2023)]. https://doi.org/10.1063/10.0017816
135. V. A. Konstantinov, A. V. Karachevtseva, and V. V. Sagan, “Phase V–T diagrams of solid hydrocarbons. part III: Cyclic compounds,” Low Temp. Phys. 49, 971 (2023) [Fiz. Nyzk. Temp. 49, 1066 (2023)]. https://doi.org/10.1063/10.0020165
136. V. A. Konstantinov, V. G. Manzhelii, and S. A. Smirnov, “Temperature dependence of isochoric thermal conductivity of crystalline benzene,” Ukr. Fiz. J. 37, 757 (1992).
137. R. G. Ross, P. Andersson, and G. Bäckström, “Thermal conductivity and heat capacity of benzene, naphthalene and anthracene under pressure,” Molec. Phys. 38, 527 (1979). https://doi.org/10.1080/00268977900101851
138. X. Xiao, J. P. M. Trusler, X. Yang, M. Thol, S. Z. S. Al Ghafri, D. Rowland, and E. F. May, “Equation of state for solid benzene valid for temperatures up to 470 K and pressures up to 1800MPa,” J. Phys. Chem. Ref. Data 50, 043104 (2021). https://doi.org/10.1063/5.0065786
139. V. A. Konstantinov, V. P. Revyakin, V. V. Sagan, O. I. Pursky, and V. M. Sysoev, “Thermal conductivity of solid cyclohexane in orientationally ordered and disordered phases,” J. Exp. Theor. Phys. 112, 220 (2011). https://doi.org/10.1134/S1063776111010092
140. V. A. Konstantinov, V. P. Revyakin, V. V. Sagan, O. I. Pursky, and A. V. Karachevtseva, “Heat transfer in plastic phases I and II of cyclopentane,” Centr. Europ. J. Phys. 12, 654 (2014). https://doi.org/10.2478/s11534-014-0501-8
141. V. A. Konstantinov, V. P. Revyakin, V. V. Sagan, and A. V. Karachevtseva, “The peculiarities of heat transfer in solid THF,” Low Temp. Phys. 40, 1008 (2014) [Fiz. Nizk. Temp. 40, 1290 (2014)]. https://doi.org/10.1063/1.4901988
142. V. A. Konstantinov, V. V. Sagan, V. P. Revyakin, A. V. Zvonaryova, and O. I. Pursky, “Isochoric thermal conductivity of solid furan,” Low Temp. Phys. 39, 473 (2013) [Fiz. Nizk. Temp. 39, 606 (2013)]. https://doi.org/10.1063/1.4807042
143. V. A. Konstantinov, A. I. Krivchikov, O. A. Korolyuk, V. P. Revyakin, V. V. Sagan, G. A. Vdovichenko, and A. V. Zvonaryova, “Heat transfer in different phases of solid cyclohexene,” Physica B: Condens. Matter 424, 54 (2013). https://doi.org/10.1016/j.physb.2013.04.055
144. V. A. Konstantinov, V. P. Revyakin, V. V. Sagan, and A. V. Karachevtseva, “Isochoric thermal conductivity of the “plastic” phase of cyclic hydrocarbons: Thiophene,” Low Temp. Phys. 41, 213 (2015) [Fiz. Nizk. Temp. 41, 278 (2015)]. https://doi.org/10.1063/1.4915910
145. A. P. Ryzhenkov and V. M. Kozhin, “Study of thermal expansion of molecular crystals,” Kristallografiya 12, 1079 (1967) [Sov. Phys. Crystallogr. 12, 943 (1967)].
146. A. P. Ryzhenkov, V. M. Kozhin, and R. M. Myasnikova, “Study of thermal expansion of molecular crystals,” Kristallografiya 13, 1028 (1968) [Sov. Phys. Crystallogr. 13, 892 (1968)].
147. K. V. Mirskaya, “Measurement and calculation of some thermodynamic characteristics of adamantane and hexamethylenetetramine,” Kristallografiya 8, 225 (1963) [Sov. Phys. Crystallogr. 8, 167 (1963)].
148. J. Wigren and P. Andersson, “Thermal conductivity and heat capacity of adamantane and hexamethylenetetramine under pressure,” Mol. Cryst. Liq. Cryst. 59, 137 (1980). https://doi.org/10.1080/00268948008073505
149. V. A. Konstantinov, V. P. Revyakin, and V. V. Sagan, “Isochoric thermal conductivity of solid n-alkanes: Propane C3H8,” Low Temp. Phys. 35, 577 (2009) [Fiz. Nizk. Temp. 35, 735 (2009)]. https://doi.org/10.1063/1.3170934
150. V. A. Konstantinov, V. P. Revyakin, and V. V. Sagan, “Isochoric thermal conductivity of solid n-alkanes: Hexane C6H14,” Low Temp. Phys. 37, 420 (2011) [Fiz. Nizk. Temp. 37, 531 (2011)]. https://doi.org/10.1063/1.3604519
151. H. Forsman and P. Andersson, “Effects of temperature and pressure on the thermal conductivity of solid n-undecane,” Ber. Bunsenges. Phys. Chem. 87, 490 (1983). https://doi.org/10.1002/bbpc.19830870608
152. J. G. Hust and R. E. Schramm, “Density and crystallinity measurements of liquid and solid n-undecane, n-tridecane, and o-xylene from 200 to 350 K,” J. Chem, Eng. Data 21, 7 (1976). https://doi.org/10.1021/je60068a002
153. V. A. Konstantinov, V. V. Sagan, and A. V. Karachevtseva, “Isochoric thermal conductivity of crystalline 1-propanol,” Low Temp. Phys. 43, 390 (2017) [Fiz. Nizk. Temp. 43, 479 (2017)]. https://doi.org/10.1063/1.4981820
154. V. A. Konstantinov, V. V. Sagan, and A. V. Karachevtseva, “Isochoric thermal conductivity of crystalline 2-propanol,” Low Temp. Phys. 44, 840 (2018) [Fiz. Nizk. Temp. 44, 1073 (2018)]. https://doi.org/10.1063/1.5049169
155. O. Andersson, R. G. Ross, and G. Bäckström, “Thermal conductivity of crystalline and glassy crystal cyclohexanol under pressure,” Mol. Phys. 66, 619 (1989). https://doi.org/10.1080/00268978900100371
156. R. M. Ibberson, S. Parsons, D. R. Allan, and A. M. Bell, “Polymorphism in cyclohexanol,” Acta Cryst. B 64, 573 (2008). https://doi.org/10.1107/S0108768108025093
157. O. Andersson and R. G. Ross, “Thermal conductivity, heat capacity and phase diagram of cyclooctanol in liquid, solid and glassy crystal states under high pressure,” Mol. Phys. 71, 523 (1990). https://doi.org/10.1080/00268979000101951
158. R. Puertas, M. A. Rute, J. Salud, D. O. López, S. Diez, J. K. Miltenburg, L. C. Pardo, J. L. Tamarit, M. Barrio, M. A. Pérez-Jubindo, and M. R. Fuente, “Thermodynamic, crystallographic, and dielectric study of the nature of glass transitions in cyclooctanol,” Phys. Rev. B 69, 224202 (2004). https://doi.org/10.1103/PhysRevB.69.224202
159. N. A. Aksenova, A. P. Isakina, A. I. Prokhvatilov, and M. A. Strzhemechny, “Analysis of thermodynamic properties of fullerite C60,” Low Temp. Phys. 25, 724 (1999) [Fiz. Nizk. Temp. 25, 964 (1999)]. https://doi.org/10.1063/1.593803
160. O. Andersson, A. Soldatov, and B. Sundqvist, “Thermal conductivity of C60 at pressures up to 1 GPa and temperatures in the 50–300 K range,” Phys. Rev. B 54, 3093 (1996). https://doi.org/10.1103/PhysRevB.54.3093
161. V. I. Zubov, N. P. Tretiakov, J. N. T. Rabelo, and J. F. S. Ortiz, “Thermodynamic properties of the fcc modification of solid fullerene C60,” MRS Online Proceedings Library 359, 253 (1994). https://doi.org/10.1557/PROC-359-253
162. S. L. Miller, “The nature and occurrence of clathrate hydrates,” in Natural Gases in Marine Sediments, edited by, I. R. Kaplan (Marine Science, Vol. 3, Springer, Boston, MA, 1974).
163. N. J. English and J. M. D. MacElroy, “Perspectives on molecular simulation of clathrate hydrates: Progress, prospects and challenges, Chem. Eng. Sci. 121, 133 (2015). https://doi.org/10.1016/j.ces.2014.07.047
164. R. G. Ross, P. Andersson, and G. Bäckström, “Unusual PT dependence of thermal conductivity for a clathrate hydrate,” Nature 290, 322 (1981). https://doi.org/10.1038/290322a0
165. R. G. Ross and P. Andersson, “Clathrate and other solid phases in the tetrahydrofuran-water system: Thermal conductivity and heat capacity under pressure,” Can. J. Chem. 60, 881 (1982). https://doi.org/10.1139/v82-132
166. P. Andersson and R. G. Ross, “Effect of guest molecule size on the thermal conductivity and heat capacity of clathrate hydrates,” J. Phys. C: Solid State Phys. 16, 1423 (1983). https://doi.org/10.1088/0022-3719/16/8/011
167. O. Andersson and H. Suga, “Thermal conductivity of normal and deuterated tetrahydrofuran clathrate hydrates,” J. Phys. Chem. Sol. 57, 125 (1996). https://doi.org/10.1016/0022-3697(95)00157-3
168. A. I. Krivchikov, O. A. Korolyuk, and O. O. Romantsova, “Heat transfer in crystalline clathrate hydrates at low temperatures,” Low Temp. Phys. 33, 612 (2007) [Fiz. Nizk. Temp. 33, 798 (2007)]. https://doi.org/10.1063/1.2755205
169. C. Yuan, H. Zong, H. Dong et al, “Pressure-regulated rotational guests in nano-confined spaces suppress heat transport in methane hydrates,” Nat. Commun. 15, 9477 (2024). https://doi.org/10.1038/s41467-024-53698-0
170. M. Saiduzzaman, P. H. B. Carvalho, N. Boulanger, U. Häussermann, and O. Andersson, “Thermal conductivity of sI CO2 clathrate hydrate and the effect of guest size in sI and sII hydrates,” Energy & Fuels 39, 22574 (2025). https://doi.org/10.1021/acs.energyfuels.5c04143
171. T. C. Hansen, A. Falenty, and W. F. Kuhs, “Lattice constants and expansivities of gas hydrates from 10 K up to the stability limit,” J. Chem. Phys. 144, 054301 (2016). https://doi.org/10.1063/1.4940729
172. W. Zhou, Y. Cheng, K. Chen, G. Xie, T. Wang, and G. Zhang, “Thermal conductivity of amorphous materials,” Adv. Funct. Mater. 30, 1903829 (2019). https://doi.org/10.1002/adfm.201903829
173. D. Gerlich and G. A. Slack, “Pressure dependence of the thermal conductivity of glasses,” J. Phys. Chem. Solids 46, 433 (1985). https://doi.org/10.1016/0022-3697(85)90108-8
174. J. Oishi and T. Kimura, “Thermal expansion of fused quartz,” Metrologia 5, 50 (2005). https://doi.org/10.1088/0026-1394/5/2/004
175. A. Henry, “Thermal transport in polimers,” Ann. Rev. Heat Trans. 17, 485 (2014). https://doi.org/10.1615/AnnualRevHeatTransfer.2013006949
176. X. Wei, Z. Wang, Z. Tian, and T. Luo, “Thermal transport in polymers: A review,” J. Heat Transfer 143, 072101 (2021). https://doi.org/10.1115/1.4050557
177. T. Kikuchi, T. Takahashi, and K. Koyama, “Temperature and pressure dependence of thermal conductivity measurement of polystyrene and polycarbonate,” J. Macromolec. Sci. B 42, 1097 (2003). https://doi.org/10.1081/MB-120023560
178. K. Eiermann, “Über die druckabhängigkeit der wärmeleitfähigkeit amorpher stoffe,” Kolloid-Z u. Z. Polymere 199, 63 (1964). https://doi.org/10.1007/BF01499695
179. S. Eim, S. Jo, J. Kim, S. Park, D. Lee, T. P. Russell, and D. Y. Ryu, “Insights into the thermal expansion of amorphous polymers,” ACS Macro Lett. 13, 1490 (2024). https://doi.org/10.1021/acsmacrolett.4c00574
180. P. Andersson and G. Bäckström, “Pressure dependence of the thermal conductivity, thermal diffusivity, and specific heat of polyethylene,” J. Appl. Phys. 44, 2601 (1973). https://doi.org/10.1063/1.1662620
181. J. R. Asay, S. R. Urzendowski, and A. H. Guenther, Ultrasonic and Thermal Studies of Selected Plastics, Laminated Materials and Metals, AFWL-TR 67-91 (Air Force Weapons Laboratory, Kirtland Air Force Base, New Mexico, 1966), p. 493.
182. S. P. Andersson and O. Andersson, “Thermal conductivity, heat capacity, and compressibility of atactic poly(propylene) under high pressure,” Int. J. Thermophys. 18, 845 (1997). https://doi.org/10.1007/BF02575137
183. S. P. Andersson, O. Andersson, and G. Bäckström, “Thermal conductivity of amorphous teflon (AF 1600) at high pressure,” Int. J. Thermophys. 18, 209 (1997). https://doi.org/10.1007/BF02575208
184. S. P. Andersson, “Volume dependence of thermal conductivity and isothermal bulk modulus up to 1 GPa for poly(vinylacetate),” J. Polymer Sci.: Part B: Polymer Phys. 36, 1451 (1998). https://doi.org/10.1002/(SICI)1099-0488(19980715)36:9<1451::AID-POLB4>3.0.CO;2-N
185. S. P. Andersson, “Pressure and volume dependence of thermal conductivity and isothermal bulk modulus up to 1 GPa for poly(isobutylene),” J. Polymer Sci.: Part B: Polymer Phys. 36, 1781 (1998). https://doi.org/10.1002/(SICI)1099-0488(19980730)36:10<1781::AID-POLB19>3.0.CO;2-5
186. S. P. Andersson, “Pressure and volume dependence of thermal conductivity and isothermal bulk modulus for poly(propyleneglycol),” J. Polymer Sci.: Part B: Polymer Phys. 36, 345 (1998). https://doi.org/10.1002/(SICI)1099-0488(19980130)36:2<345::AID-POLB13>3.0.CO;2-H
187. S. P. Andersson and R. G. Ross, “Thermal conductivity and heat capacity per unit volume of poly(methyl methacrylate) under high pressure,” Int. J. Thermophys. 15, 949 (1994). https://doi.org/10.1007/BF01447105
188. J. K. Horrocks and E. McLaughlin, “Thermal conductivity of simple molecules in the condensed state,” Trans. Faraday Soc. 56, 206 (1960);https://doi.org/10.1039/tf9605600206Crossref
189. J. K. Horrocks and E. McLaughlin, “Liquid-phase thermal conductivities of isotopically substituted molecules,” Trans. Faraday Soc. 59, 1709 (1963). https://doi.org/10.1039/TF9635901110Crossref
190. W. Hsieh, M. D. Losego, P. V. Braun, S. Shenogin, P. Keblinski, and D. G. Cahill, “Testing the minimum thermal conductivity model for amorphous polymers using high pressure,” Phys. Rev. B 83, 174205 (2011). https://doi.org/10.1103/PhysRevB.83.174205
191. R. G. Ross, P. Andersson, and G. Bäckström, “Thermal conductivity of allotropic modifications of ice,” Nature 259, 553 (1976). https://doi.org/10.1038/259553a0
192. R. G. Ross, P. Andersson, and G. Bäckström, “Thermal conductivity of nine solid phases of H2O,” High Temp.–High Pressure 9, 87 (1977). https://doi.org/10.1103/PhysRevB.22.3065
193. G. A. Slack, “Thermal conductivity of ice,” Phys. Rev. B 22, 3065 (1980). https://doi.org/10.1103/PhysRevB.22.3065
194. O. Andersson and A. Inaba, “Unusual grüneisen and bridgman parameters of low-density amorphous ice and their implications on pressure induced amorphization,” J. Chem. Phys. 122, 124710 (2005). https://doi.org/10.1063/1.1869352
195. O. Andersson and A. Inaba, “Thermal conductivity of crystalline and amorphous ices and its implications on amorphization and glassy water,” Phys. Chem. Chem. Phys. 7, 1441 (2005). https://doi.org/10.1039/b500373c
196. O. Andersson, “Thermal conductivity of normal and deuterated water, crystalline ice, and amorphous ices,” J. Chem. Phys. 149, 124506 (2018). https://doi.org/10.1063/1.5050172
197. A. D. Fortes, “Accurate and precise lattice parameters of H2O and D2O ice Ih between 1.6 and 270 K from high-resolution time-of-flight neutron powder diffraction data,” Acta Cryst. B 74, 196 (2018). https://doi.org/10.1107/S2052520618002159
198. R. G. Ross and O. Sandberg, “The thermal conductivity of four solid phases of NH4F, and a comparison with H2O,” J. Phys. C: Solid State Phys. 11, 667 (1978). https://doi.org/10.1088/0022-3719/11/4/010
199. G. A. Slack and P. Andersson, “Pressure and temperature effects on the thermal conductivity of CuCl,” Phys. Rev. B 26, 1873 (1982). https://doi.org/10.1103/PhysRevB.26.1873
200. L. J. Conway, K. Brown, J. S. Loveday, and A. Hermann, “Ammonium fluoride’s analogy to ice: Possibilities and limitations,” J. Chem. Phys. 154, 204501 (2021). https://doi.org/10.1063/5.0048516
201. S. Mukhopadhyay, D. Bansal, O. Delaire, D. Perrodin, E. Bourret-Courchesne, D. J. Singh, and L. Lindsay, “The curious case of cuprous chloride: Giant thermal resistance and anharmonic quasiparticle spectra driven by dispersion nesting,” Phys. Rev. B 96, 100301 (2017). https://doi.org/10.1103/PhysRevB.96.100301
202. A. Kundu, F. Knoop, and I. A. Abrikosov, “Revisiting thermal transport in CuCl: First-principles calculations and machine learning force fields,” Phys. Rev. B 112, 214306 (2025). https://doi.org/10.1103/8p6y-fsmh
203. S. Andersson and L. Dzhavadov, “Thermal conductivity and heat capacity of amorphous SiO2: Pressure and volume dependence,” J. Phys.: Condens. Matter 4, 6209 (1992). https://doi.org/10.1088/0953-8984/4/29/005
204. T. Katsura, “Thermal diffusivity of silica glass at pressures up to 9 GPa,” Phys. Chem. Minerals 20, 201 (1993). https://doi.org/10.1007/BF00200122
205. T. Ouyang and M. Hu, “Competing mechanism driving diverse pressure dependence of thermal conductivity of XTe (X = Hg, Cd, and Zn),” Phys. Rev. B 92, 235204 (2015). https://doi.org/10.1103/PhysRevB.92.235204
206. K. Yuan, X. Zhang, D. Tang, and M. Hu, “Anomalous pressure effect on the thermal conductivity of ZnO, GaN, and AlN from first-principles calculations,” Phys. Rev. B 98, 144303 (2018). https://doi.org/10.1103/PhysRevB.98.144303
207. L. Elalfy, D. Music, and M. Hu, “First-principles investigation of anomalous pressure-dependent thermal conductivity of chalcopyrites,” Materials 12, 3491 (2019). https://doi.org/10.3390/ma12213491
208. M. Zhang, G. Tang, and Y. Li, “Hydrostatic pressure tuning of thermal conductivity for PbTe and PbSe considering pressure-induced phase transitions,” ACS Omega 6, 3980 (2021). https://doi.org/10.1021/acsomega.0c05907
209. W. Cao, J. Shi, R. Xiong, L. Miao, Z. Wang, and Z. Liu, “Anomalous thermal transport in MgSe with diamond phase under pressure,” Phys. Rev. B 107, 235201 (2023). https://doi.org/10.1103/PhysRevB.107.235201
210. Y. Li, J. Liu, X. Wang, and J. Hong, “Anomalous suppressed thermal conductivity in CuInTe2 under pressure,” Appl. Phys. Lett. 119, 243901 (2021). https://doi.org/10.1063/5.0075135
211. N. K. Ravichandran and D. Broido, “Exposing the hidden influence of selection rules on phonon-phonon scattering by pressure and temperature tuning,” Nat. Commun. 12, 3473 (2021). https://doi.org/10.1038/s41467-021-23618-7
212. S. Li, Z. Qin, H. Wu, M. Li, M. Kunz, A. Alatas, A. Kavner, and Y. Hu, “Anomalous thermal transport under high pressure in boron arsenide,” Nature 612, 459 (2022). https://doi.org/10.1038/s41586-022-05381-x
213. X. Jiang, Y. Li, X. Liu, Q. Ren, G. Tang, and J. Hong, “Anomalous thermal transport in Li2Te by high-pressure enhanced four-phonon scattering,” Phys. Rev. B 113, 064309 (2026). https://doi.org/10.1103/m3rc-9jn2