Predictive models for metal-metal bond dissociation free energies between aluminum(III) and a series of transition metal carbonyls

被引:2
|
作者
Subasinghe, S. M. Supundrika [1 ]
Mankad, Neal P. [1 ]
机构
[1] Univ Illinois, Dept Chem, 845 W Taylor St, Chicago, IL 60607 USA
关键词
Aluminum; Metal-metal bonds; Heterobimetallic complexes; Density functional theory; Multivariate linear regression; SMALL-MOLECULE ACTIVATION; CU-FE; HETEROBIMETALLIC COMPLEXES;
D O I
10.1016/j.poly.2023.116637
中图分类号
O61 [无机化学];
学科分类号
070301 ; 081704 ;
摘要
It was previously shown that the complex, LAl(Me)Fp [where L is a beta-diketiminate and Fp = FeCp(CO)2] undergoes Al-Fe homolysis at ambient conditions, revealing a pair of metalloradical intermediates capable of cooperative small molecule activation. Towards expanding this platform to other Al-M derivatives, here we conducted an extensive computational screening of potential LAl(Me)M catalysts (where M is a series of common metal carbonyls) using DFT calculations combined with multivariate linear regression (MLR) analysis. Predictive models were established that anticipate the influences of different metals on Al-M bond dissociation free energies (BDFEs), utilizing electronic and steric parameters obtained from existing literature and from buried volume calculations (%Vbur), including a convenient model that can be applied without aid of further DFT calculations. Our investigations unveiled a partial correlation between Al-M BDFEs and M-H BDFEs, in that both depend on pKa and E degrees values of M. However, Al-M BDFEs demonstrate significant influences from both steric crowding and Al-M orbital overlap, neither of which contribute to M-H BDFE. By employing MLR to derive predictive models, extrapolation to other hypothetical complexes beyond the training set presented in this study is facilitated. Thus, our research will inform and enable the future design of sustainable catalytic processes involving heterobimetallic Al-M complexes with earth-abundant metals.
引用
收藏
页数:5
相关论文
共 50 条
  • [21] BOND ENERGIES OF TRANSITION METAL HALIDES
    ALLEN, TL
    JOURNAL OF CHEMICAL PHYSICS, 1957, 26 (06): : 1644 - 1647
  • [22] A diamagnetic dititanium(III) paddlewheel complex with no direct metal-metal bond
    Mendiratta, Arjun
    Cummins, Christopher C.
    Cotton, F. Albert
    Ibragimov, Sergey A.
    Murillo, Carlos A.
    Villagran, Dino
    INORGANIC CHEMISTRY, 2006, 45 (11) : 4328 - 4330
  • [23] Metal-metal bond energy in a binuclear molybdenum(III) aqua complex
    Proyavkin, AA
    Dementiev, IA
    Kozin, AO
    Kondratiev, YV
    Korolkov, DV
    MENDELEEV COMMUNICATIONS, 2003, (06) : 252 - 253
  • [24] Dinuclear compounds without a metal-metal bond. Dirhodium(III,III)carboxamidates
    Angelone, Davide
    Draksharapu, Apparao
    Browne, Wesley R.
    Choudhuri, M. M. R.
    Crutchley, Robert J.
    Xu, Xichen
    Xu, Xinfang
    Doyle, Michael P.
    INORGANICA CHIMICA ACTA, 2015, 424 : 235 - 240
  • [25] LIGAND EFFECTS ON TRANSITION-METAL ALKYL BOND-DISSOCIATION ENERGIES
    NG, FTT
    REMPEL, GL
    HALPERN, J
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1982, 104 (02) : 621 - 623
  • [27] Bond dissociation energies of transition metal oxides: CrO, MoO, RuO, and RhO
    Sorensen, Jason J.
    Tieu, Erick
    Sevy, Andrew
    Merriles, Dakota M.
    Nielson, Christopher
    Ewigleben, Joshua C.
    Morse, Michael D.
    JOURNAL OF CHEMICAL PHYSICS, 2020, 153 (07):
  • [28] INFLUENCE OF METAL-METAL BOND-ENERGIES ON ADHESION, HARDNESS, FRICTION AND WEAR OF METALS
    VIJH, AK
    JOURNAL OF MATERIALS SCIENCE, 1975, 10 (06) : 998 - 1004
  • [29] RELATIONSHIP BETWEEN MULTIPLICITY AND LENGTH OF METAL-METAL BOND IN RHENIUM COMPOUNDS
    KOZMIN, PA
    DOKLADY AKADEMII NAUK SSSR, 1972, 206 (06): : 1384 - &
  • [30] CORRELATION OF METAL-METAL BOND LENGTHS AND METAL ORBITAL IONIZATION ENERGIES IN DICHROMIUM(II) AND DIMOLYBDENUM(II) COMPLEXES
    BERRY, M
    GARNER, CD
    HILLIER, IH
    MACDOWELL, AA
    WALTON, IB
    CHEMICAL PHYSICS LETTERS, 1980, 70 (02) : 350 - 352