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In such cases, the electron transfer is termed intermolecular electron transfer. A famous example of an inner sphere ET process that proceeds via a transitory bridged intermediate is the reduction of [CoCl(NH 3) 5] 2+ by [Cr(H 2 O) 6] 2+. [5] [6] In this case, the chloride ligand is the bridging ligand that covalently connects the redox ...
In outer sphere redox reactions no bonds are formed or broken; only an electron transfer (ET) takes place. A quite simple example is the Fe 2+ /Fe 3+ redox reaction, the self exchange reaction which is known to be always occurring in an aqueous solution containing the aquo complexes [Fe(H 2 O) 6] 2+ and [Fe(H 2 O)6] 3+.
First, the transfer of an electron from BPh − to P960 + is relatively slow compared to two other redox reactions in the reaction center. The faster reactions involve the transfer of an electron from BPh − (BPh − is oxidized to BPh) to the electron acceptor quinone (Q A ), and the transfer of an electron to P960 + (P960 + is reduced to ...
A Proton-coupled electron transfer (PCET) is a chemical reaction that involves the transfer of electrons and protons from one atom to another. The term was originally coined for single proton, single electron processes that are concerted, [ 1 ] but the definition has relaxed to include many related processes.
Inner sphere electron transfer (IS ET) or bonded electron transfer [1] is a redox chemical reaction that proceeds via a covalent linkage—a strong electronic interaction—between the oxidant and the reductant reactants. In inner sphere electron transfer, a ligand bridges the two metal redox centers during the electron transfer event. Inner ...
An example is the degenerate reaction between the tetrahedral ions permanganate and manganate: [MnO 4 ] − + [Mn*O 4 ] 2− → [MnO 4 ] 2− + [Mn*O 4 ] − For octahedral metal complexes , the rate constant for self-exchange reactions correlates with changes in the population of the e g orbitals , the population of which most strongly ...
Structure of [Fe 4 S 4 (SMe) 4] 2−, a synthetic analogue of 4Fe–4S cofactors. [1]Iron–sulfur clusters are molecular ensembles of iron and sulfide.They are most often discussed in the context of the biological role for iron–sulfur proteins, which are pervasive. [2]
Both domains are involved in electron transfer within the complex. Complex IV contains a cytochrome a/a3-domain that transfers electrons and catalyzes the reaction of oxygen to water. Photosystem II, the first protein complex in the light-dependent reactions of oxygenic photosynthesis , contains a cytochrome b subunit.