Driving multi-electron reactions with photons: Dinuclear ruthenium complexes capable of stepwise and concerted multi-electron reduction

被引:31
|
作者
Wouters, Kelly L.
de Tacconi, Norma R.
Konduri, Rama
Lezna, Reynaldo O.
MacDonnell, Frederick M. [1 ]
机构
[1] Univ Texas, Dept Chem & Biochem, Arlington, TX 76019 USA
[2] Univ Nacl La Plata, INIFTA, RA-1906 La Plata, Argentina
基金
美国国家科学基金会;
关键词
acceptor ligands; multi-electron; photochemistry; proton-coupled electron transfer; ruthenium polypyridyl;
D O I
10.1007/s11120-005-6398-8
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Using biological precedents, it is expected that concerted, multi-electron reduction processes will play a significant role in the development of efficient artificial photosynthetic systems. We have found that the dinuclear ruthenium complexes [(phen)(2)Ru(tatpp)Ru(phen)(2)](4+) (P) and [(phen)(2)Ru(tatpq)Ru(phen)(2)](4+) (Q) undergo photodriven 2- and 4-electron reductions, respectively, in the presence of a sacrificial reductant. Importantly, these processes are completely reversible upon exposure to air, and consequently, these complexes have the potential to be used catalytically in multi-electron transfer reactions. A localized molecular orbital description of the ligands and complexes is used to explain both the function and spectroscopy of these complexes. In both complexes, the reducing equivalents are stored in the pi* orbitals of the bridging ligands and depending on the solution pH, various protonation states of the reduced species of P and Q are obtained. Under basic conditions, the photochemical pathway favors sequential single-electron reductions, while neutral or slightly acidic conditions give rise to proton-coupled multi-electron transfer. In fact, at sufficiently acidic pH, only a coupled two-electron, 2-proton process is seen. Few molecular photocatalysts are capable of proton-coupled multi-electron transfer, which is believed to be a fundamental component of light-activated energy storage in nature.
引用
收藏
页码:41 / 55
页数:15
相关论文
共 50 条
  • [11] Design and synthesis of multinuclear complexes for multi-electron chemistry
    Malbrecht, Brian J.
    Wilding, Matthew J. T.
    Betley, Theodore A.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2014, 248
  • [12] Metal-phthalocyanine complexes as electrocatalysts for the multi-electron reduction of carbon dioxide
    Ertekin, Zeliha
    Symes, Mark D.
    APPLIED CATALYSIS A-GENERAL, 2023, 666
  • [13] Multi-electron transfer process of a vanadium dinuclear complex for molecular conversions
    Tsuchida, E
    Yamamoto, K
    Oyaizu, K
    METAL-CONTAINING POLYMERIC MATERIALS, 1996, : 139 - 149
  • [14] Multi-electron bubbles under pressure
    Silvera, IF
    Tempere, J
    Huang, J
    Devreese, J
    FRONTIERS OF HIGH PRESSURE RESEARCH II: APPLICATION OF HIGH PRESSURE TO LOW-DIMENSIONAL NOVEL ELECTRONIC MATERIALS, 2001, 48 : 541 - 549
  • [15] EXCHANGE INTERACTION OF MULTI-ELECTRON ATOMS
    DUMAN, EL
    SMIRNOV, BM
    OPTICS AND SPECTROSCOPY-USSR, 1970, 29 (03): : 229 - &
  • [16] MULTI-ELECTRON THEORY OF RESISTIVITY OF ALLOYS
    MASHAROV, SI
    PHYSICS OF METALS AND METALLOGRAPHY-USSR, 1967, 23 (01): : 13 - &
  • [17] IMPURITY CONDUCTION BY MULTI-ELECTRON TRANSITIONS
    KNOTEK, ML
    POLLAK, M
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1972, 17 (03): : 305 - &
  • [18] Analytic model of a multi-electron atom
    Skoromnik, O. D.
    Feranchuk, I. D.
    Leonau, A. U.
    Keitel, C. H.
    JOURNAL OF PHYSICS B-ATOMIC MOLECULAR AND OPTICAL PHYSICS, 2017, 50 (24)
  • [19] Multi-electron strong field theory
    Fabian, C
    Kitzler, M
    Milosevic, N
    Brabec, T
    JOURNAL OF MODERN OPTICS, 2003, 50 (3-4) : 589 - 595
  • [20] Time ordering in multi-electron dynamics
    McGuire, JH
    Godunov, AL
    Shakov, KK
    Shipakov, VA
    Merabet, H
    Bruch, R
    Hanni, J
    JOURNAL OF PHYSICS B-ATOMIC MOLECULAR AND OPTICAL PHYSICS, 2003, 36 (02) : 209 - 216