Fluxionality of Hydrogen Ligands in Fe(H)2(H2)(PEtPh2)3

被引:11
|
作者
Doslic, Nada [2 ]
Gomzi, Vjeran [2 ]
Malis, Momir [2 ]
Matanovic, Ivana [2 ]
Eckert, Juergen [1 ]
机构
[1] Univ Calif Santa Barbara, Mat Res Lab, Santa Barbara, CA 93106 USA
[2] Rudjer Boskovic Inst, Dept Phys Chem, Zagreb 10000, Croatia
关键词
EFFECTIVE CORE POTENTIALS; METAL-ORGANIC FRAMEWORKS; MOLECULAR CALCULATIONS; TEMPERATURE-DEPENDENCE; TRANSITION; COMPLEXES; STORAGE; DIHYDROGEN; SPILLOVER; ACTIVATION;
D O I
10.1021/ic201248z
中图分类号
O61 [无机化学];
学科分类号
070301 ; 081704 ;
摘要
Extensive computational investigations along with additional quasielastic neutron scattering data were used to obtain a consistent picture of the extensive fluxionality of hydride and dihydrogen ligands in Fe(H)(2)(H-2)(PEtPh2)(3) over a wide range of temperatures from 1.5 to 320 K. We were able to identify three different regimes in the dynamical processes based on activation energies obtained from line spectral broadening. The rotational tunneling lines (coherent exchange of the two hydrogens of the H-2 ligand) are broadened with increasing temperature by incoherent exchange up to about 80 K at which point they merge into a quasielastic spectrum from 100 K to about 225 K. The effective activation energies for the two regions are 0.14 and 0.1 kcal mol(-1), respectively. A third dynamical process with a higher activation energy of 0.44 kcal mol(-1) dominates above 225 K, which we attribute to a quantum dynamical exchange of dihydrogen and hydride ligands. Our detailed density functional theory (DFT) structural calculations involving the three functionals (B3LYP, TPSS, and wB97XD) provide a good account of the experimental structure and rotational barriers when only the hydrogen ligands are relaxed. Full relaxation of the "gas-phase" molecule, however, appears to occur to a greater degree than what is possible in the crystal structure. The classical dihydrogen-hydride exchange path involves a cis-dihydrogen and tetrahydride structure with energies of 6.49 and 7.38 kcal mol(-1), respectively. Experimental observation of this process with much lower energies would seem to suggest involvement of translational tunneling in addition to the rotational tunneling. Dynamics of this type may be presumed to be important in hydrogen spillover from metal particles, and therefore need to be elucidated in an effort to utilize this phenomenon.
引用
收藏
页码:10740 / 10747
页数:8
相关论文
共 50 条
  • [21] Aqueous Coordination Chemistry of H2: Why is Coordinated H2 Inert to Substitution by Water in trans-Ru(P2)2(H2)H+-type Complexes (P2 = a Chelating Phosphine)?
    Szymczak, Nathaniel K.
    Braden, Dale A.
    Crossland, Justin L.
    Turov, Yevgeniya
    Zakharov, Lev N.
    Tyler, David R.
    INORGANIC CHEMISTRY, 2009, 48 (07) : 2976 - 2984
  • [22] Modeling Impacts of Fe Activity and H2 Partial Pressure on Hydrogen Storage in Shallow Subsurface Reservoirs
    Pathak, Arkajyoti
    Bowman, Samuel
    Sharma, Shikha
    AQUATIC GEOCHEMISTRY, 2024, 30 (02) : 73 - 92
  • [23] Crystal and molecular structure of Sr2(Edta) • 5H2O, Sr2(H2 Edta)(HCO3)2 • 4H2O, and Sr2(H2 Edta)Cl2 • 5H2O strontium ethylenediaminetetraacetates
    Polyakova, I. N.
    Poznyak, A. L.
    Sergienko, V. S.
    CRYSTALLOGRAPHY REPORTS, 2009, 54 (02) : 236 - 241
  • [24] Is the H2 economy realizable in the foreseeable future? Part I: H2 production methods
    Nazir, Hassan
    Louis, Cindrella
    Jose, Sujin
    Prakash, Jyoti
    Muthuswamy, Navaneethan
    Buan, Marthe E. M.
    Flox, Cristina
    Chavan, Sai
    Shi, Xuan
    Kauranen, Pertti
    Kallio, Tanja
    Maia, Gilberto
    Tammeveski, Kaido
    Lymperopoulos, Nikolaos
    Carcadea, Elena
    Veziroglu, Emre
    Iranzo, Alfredo
    Kannan, Arunachala M.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (27) : 13777 - 13788
  • [25] High-Frequency Fe-H and Fe-H2 Modes in a trans-Fe(η2-H2)(H) Complex: A Speed Record for Nuclear Resonance Vibrational Spectroscopy
    Chiang, Ming-Hsi
    Pelmenschikov, Vladimir
    Gee, Leland B.
    Liu, Yu-Chiao
    Hsieh, Chang-Chih
    Wang, Hongxin
    Yoda, Yoshitaka
    Matsuura, Hiroaki
    Li, Lei
    Cramer, Stephen P.
    INORGANIC CHEMISTRY, 2021, 60 (02) : 556 - 560
  • [26] Computational study of H2 binding to MH3 (M = Ti, V, or Cr)
    Hales, James J.
    Trudeau, Michel L.
    Antonelli, David M.
    Kaltsoyannis, Nikolas
    DALTON TRANSACTIONS, 2019, 48 (15) : 4921 - 4930
  • [27] Main group catalysis for H2 purification based on liquid organic hydrogen carriers
    Hashimoto, Taiki
    Asada, Takahiro
    Ogoshi, Sensuke
    Hoshimoto, Yoichi
    SCIENCE ADVANCES, 2022, 8 (43)
  • [28] Hydrogenated gold clusters from helium nanodroplets: displacement of H2 by H2O
    Lundberg, Linnea
    Martini, Paul
    Goulart, Marcelo
    Gatchell, Michael
    Bohme, Diethard K.
    Scheier, Paul
    EUROPEAN PHYSICAL JOURNAL D, 2020, 74 (05)
  • [29] Hydrogen Uptake by {H[Mg(HCOO)3]⊃NHMe2}∞ and Determination of Its H2 Adsorption Sites through Monte Carlo Simulations
    Rossin, Andrea
    Fairen-Jimenez, David
    Dueren, Tina
    Giambastiani, Giuliano
    Peruzzini, Maurizio
    Vitillo, Jenny G.
    LANGMUIR, 2011, 27 (16) : 10124 - 10131
  • [30] Arginine-Containing Ligands Enhance H2 Oxidation Catalyst Performance
    Dutta, Arnab
    Roberts, John A. S.
    Shaw, Wendy J.
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2014, 53 (25) : 6487 - 6491