Chad T. Palumbo
University of California, Irvine
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Journal of the American Chemical Society | 2018
Dominik P. Halter; Chad T. Palumbo; Joseph W. Ziller; Milan Gembicky; Arnold L. Rheingold; William J. Evans; Karsten Meyer
Electrocatalytic energy conversion with molecular f-element catalysts is still in an early phase of its development. We here report detailed electrochemical investigations on the recently reported trivalent lanthanide coordination complexes [((Ad,MeArO)3mes)Ln] (1-Ln), with Ln = La, Ce, Pr, Nd, Sm, Gd, Dy, Er, and Yb, which were now found to perform as active electrocatalysts for the reduction of water to dihydrogen. Reactivity studies involving complexes 1-Ln and the Ln(II) analogues [K(2.2.2-crypt)][((Ad,MeArO)3mes)Ln] (2-Ln) suggest a reaction mechanism that differs significantly from the reaction pathway found for the corresponding uranium catalyst [((Ad,MeArO)3mes)U] (1-U). While complexes 1-Ln activate water via a radical pathway, only upon a 1 e- reduction to yield the reduced species 2-Ln, the 5f analogue 1-U directly reduces H2O via a 2 e- pathway. The electrocatalytic H2O reduction by complexes 1-Ln is initiated by the respective Ln(III)/Ln(II) redox couples, which gradually turn to more positive values across the Ln series. This correlation has been exploited to tune the catalytic overpotential of water reduction by choice of the lanthanide ion. Kinetic studies of the 1-Ln series were performed to elucidate correlations between overpotential and turnover frequencies of the 4f-based electrocatalysts.
Inorganic Chemistry | 2018
Chad T. Palumbo; Dominik P. Halter; Vamsee K. Voora; Guo P. Chen; Alan K. Chan; Megan E. Fieser; Joseph W. Ziller; Wolfgang Hieringer; Filipp Furche; Karsten Meyer; William J. Evans
The synthesis of 4f n Ln3+ complexes of the tris(aryloxide) mesitylene ligand, ((Ad,MeArO)3mes)3-, with Ln = La, Ce, Pr, Sm, and Yb, and their reduction with potassium have revealed that this ligand system can be redox active with some metals. Protonolysis of [Ln(N(SiMe3)2)3] (Ln = La, Ce, Pr, Sm, Yb) with the tris(phenol) (Ad,MeArOH)3mes yielded the Ln3+ complexes [((Ad,MeArO)3mes)Ln] (Ln = La, Ce, Pr, Sm, Yb), 1-Ln. Single electron reduction of each 4f n complex, 1-Ln, using potassium yielded the reduced products, [K(2.2.2-cryptand)][((Ad,MeArO)3mes)Ln] (Ln = La, Ce, Pr, Sm, Yb), 2-Ln. The Sm and Yb complexes have properties consistent with the presence of Ln2+ ions with traditional 4f n+1 electron configurations. However, the La, Ce, and Pr complexes appear to formally contain Ln3+ ions and ((Ad,MeArO)3mes)4- ligands. Structural comparisons of the [((Ad,MeArO)3mes)Ln] and [((Ad,MeOAr)3mes)Ln]1- complexes along with UV-vis absorption and EPR spectroscopy as well as density functional theory calculations support these ground state assignments.
Inorganic Chemistry | 2018
Chad T. Palumbo; Dominik P. Halter; Vamsee K. Voora; Guo P. Chen; Joseph W. Ziller; Milan Gembicky; Arnold L. Rheingold; Filipp Furche; Karsten Meyer; William J. Evans
[Y(N(SiMe3)2)3] reacts with (Ad,MeArOH)3mes to form the Y3+ complex [((Ad,MeArO)3mes)Y], 1-Y. This complex reacts with potassium metal in the presence of 2.2.2-cryptand to give a cocrystallized mixture of [K(2.2.2-cryptand)][((Ad,MeArO)3mes)Y], 2-Y, and [K(2.2.2-cryptand)][((Ad,MeArO)3mes)YH], 3-Y. The electron paramagnetic resonance spectrum of this crystalline mixture exhibits an isotropic signal at 77 K ( giso = 2.000, Wiso = 1.8 mT), suggesting that 2-Y is best described as a Y3+ complex of the tris(aryloxide)mesitylene radical ((Ad,MeArO)3mes)4-. Evidence of the hydride ligand in 3-Y was obtained by 89Y-1H heteronuclear multiple quantum coherence NMR spectroscopy, and a coupling constant of JYH = 93 Hz was observed. A single crystal of 3-Y was also obtained in pure form and structurally characterized for comparison with the crystal data on the mixed component 2-Ln/3-Ln crystals. The origin of the hydride in 3-Ln is unknown, but further studies of the reduction of 1-La, previously found to form 2-La, revealed a possible source. Ligand-based C-H bond activation and loss of hydrogen can occur under reducing conditions to form a tetraanionic ligand derived from ((Ad,MeArO)3mes)3-, as observed in [K(2.2.2-cryptand)][((Ad,MeArO)3(C6Me3(CH2)2CH)La], 4-La.
Chemical Science | 2015
Christopher M. Kotyk; Megan E. Fieser; Chad T. Palumbo; Joseph W. Ziller; Lucy E. Darago; Jeffrey R. Long; Filipp Furche; William J. Evans
Organometallics | 2015
Jordan F. Corbey; David H. Woen; Chad T. Palumbo; Megan E. Fieser; Joseph W. Ziller; Filipp Furche; William J. Evans
Chemical Science | 2017
Megan E. Fieser; Chad T. Palumbo; Henry S. La Pierre; Dominik P. Halter; Vamsee K. Voora; Joseph W. Ziller; Filipp Furche; Karsten Meyer; William J. Evans
Organometallics | 2017
Chad T. Palumbo; Megan E. Fieser; Joseph W. Ziller; William J. Evans
Organometallics | 2018
Chad T. Palumbo; Lucy E. Darago; Megan T. Dumas; Joseph W. Ziller; Jeffrey R. Long; William J. Evans
Organometallics | 2018
Chad T. Palumbo; Lucy E. Darago; Cory J. Windorff; Joseph W. Ziller; William J. Evans
Journal of Organometallic Chemistry | 2017
Chad T. Palumbo; Joseph W. Ziller; William J. Evans