Kr Adsorption in Porous Carbons: Temperature-Dependent Experimental and Computational Studies

被引:0
|
作者
Wang, Ziyi [1 ]
Quine, Cullen M. [1 ]
Saunders, Claire N. [1 ]
Bernal-Choban, Camille M. [1 ]
Ahn, Channing C. [1 ]
Fultz, Brent T. [1 ]
机构
[1] CALTECH, Pasadena, CA 91125 USA
关键词
TOTAL-ENERGY CALCULATIONS; METAL-ORGANIC FRAMEWORKS; AB-INITIO; ISOSTERIC HEAT; SIZE DISTRIBUTION; NOBLE-GASES; KRYPTON; GRAPHENE; XENON; ISOTHERMS;
D O I
10.1021/acs.langmuir.4c02194
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The temperature dependence of the adsorption energy of krypton adsorption on activated carbon materials was studied by experiment and simulation. Adsorption isotherms were measured at temperatures from 250 to 330 K and analyzed with Henry's law. The adsorption energy determined from these measurements was found to weaken by more than 10% in this range. Slit pore widths for simulations in this work were modeled by the removal of integral numbers of planes in graphite. Vibrational dynamics of the krypton adsorbate and the carbon atom adsorbent were calculated with the stochastic temperature-dependent effective potential (sTDEP) method, using energetics from density functional theory (DFT) with the many-body dispersion energy method (MBD). Thermal displacements of carbon atoms had a negligible effect on the adsorption energy. The width of the slit pore had the greatest effect on the surface dynamics and the energies of the adsorbate atoms at different temperatures. Assuming a distribution of pore widths, the Boltzmann distribution of site occupancies causes a large weakening of the thermally averaged adsorption energy at higher temperatures.
引用
收藏
页码:25793 / 25799
页数:7
相关论文
共 50 条
  • [41] The temperature-dependent strength of metals: Theory and experimental validation
    20142717881015
    Feng, X. (Fengxue@tsinghua.edu.cn), 1600, American Society of Mechanical Engineers (ASME), United States (81):
  • [42] TEMPERATURE-DEPENDENT CATION DISTRIBUTION IN TITANOMAGNETITES - EXPERIMENTAL TEST
    ODONOVAN, JB
    GEOPHYSICAL JOURNAL OF THE ROYAL ASTRONOMICAL SOCIETY, 1979, 57 (01): : 271 - 271
  • [43] TEMPERATURE-DEPENDENT CATION DISTRIBUTION IN TITANOMAGNETITES - EXPERIMENTAL TEST
    ODONOVAN, JB
    OREILLY, W
    PHYSICS AND CHEMISTRY OF MINERALS, 1980, 5 (03) : 235 - 243
  • [44] Structural and adsorption studies of activated carbons derived from porous phenolic resins
    Gun'ko, V. M.
    Kozynchenko, O. P.
    Turov, V. V.
    Tennison, S. R.
    Zarko, V. I.
    Nychiporuk, Y. M.
    Kulik, T. V.
    Palyanytsya, B. B.
    Osovskii, V. D.
    Ptushinskii, Y. G.
    Turov, A. V.
    COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2008, 317 (1-3) : 377 - 387
  • [45] INORGANIC EXCIPLEXES REVEALED BY TEMPERATURE-DEPENDENT QUENCHING STUDIES
    STACY, EM
    MCMILLIN, DR
    INORGANIC CHEMISTRY, 1990, 29 (03) : 393 - 396
  • [46] Temperature-dependent Raman scattering studies in ZnSe nanoparticles
    Fu, XG
    An, HZ
    Du, WM
    MATERIALS LETTERS, 2005, 59 (12) : 1484 - 1490
  • [47] Case studies on temperature-dependent characteristics in AC PDPs
    Shin, BJ
    Choi, KC
    Tae, HS
    Seo, JH
    Kim, JY
    Han, JW
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2005, 33 (01) : 162 - 169
  • [48] Temperature-dependent studies of NO recombination to heme and heme proteins
    Ionascu, D
    Gruia, F
    Ye, X
    Yu, AC
    Rosca, F
    Beck, C
    Demidov, A
    Olson, JS
    Champion, PM
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2005, 127 (48) : 16921 - 16934
  • [49] NMR studies on the temperature-dependent dynamics of confined water
    Sattig, Matthias
    Reutter, Stefan
    Fujara, Franz
    Werner, Mayke
    Buntkowsky, Gerd
    Vogel, Michael
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2014, 16 (36) : 19229 - 19240
  • [50] TEMPERATURE-DEPENDENT PHOTOEMISSION STUDIES OF ELECTRONIC STATES OF CUBR
    LIN, SF
    SPICER, WE
    BAUER, RS
    PHYSICAL REVIEW B, 1976, 14 (10) : 4551 - 4558