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University of San Francisco

Mechanistic Studies of Salt Effects on Bimolecular Electron-Transfer Reactions of Pentaamine Ruthenium Pyridyl Complexes Studied by 19F NMR Line-Broadening and T2 Spin-Echo Techniques

Abstract

dc:description.abstract

<p>Kinetic salt effects on the bimolecular ET self-exchange reaction between pentaamineruthenium(II)(3-trifluoromethylpyridine)<sup>2+</sup>, (NH<sub>3</sub>)<sub>5</sub>Ru<sup>II</sup>tfmp<sup>2+</sup>, and pentaamineruthenium(III)(3-trifluoromethylpyridine)<sup>3+</sup>, (NH<sub>3</sub>)<sub>5</sub>Ru<sup>III</sup>tfmp<sup>3+</sup>, have been measured using both <sup>19</sup>F NMR line-broadening and CPMG T<sub>2</sub> spin-echo relaxation techniques in H<sub>2</sub>O and D<sub>2</sub>O. Over the equimolar reactants concentration range of 0.10 mM – 8.00 mM there was a definite “self-salting” rate increase arising from the increased solution ionic strengths due to the reactants and counterions themselves. The magnitude of this effect diverged significantly, however, from predictions based on the classical Debye-Huckle-Bronsted theory of kinetic salt effects. In agreement with earlier stopped-flow work, addition of alkali-metal fluoride salts increased the rate of ET between the like-charged redox reactants in good quantitative agreement with the quantitative predictions of the Debye-Huckle-Bronsted theory of ion atmosphere charge screening effects, but the other halides exhibited progressively-increasing, non-linear upward deviations from theory in the order Cl<sup>-</sup> < Br<sup>-</sup> < I<sup>-</sup> . Catalytic effects on the rate of ET from the addition of various dicarboxylate salts were also found to deviate in a non-linear fashion from theory. In sharp contrast to previous stopped-flow work wherein addition of the trans,trans-muconate dianion showed a uniquely-large catalytic affect, NMR investigations established a complete loss in catalytic efficacy for muconate. Numerous control experiments force us to conclude that it is the presence of the magnetic field itself which quenches the catalysis as probed by NMR. Similar investigations showed that additions of even miniscule amounts of metal-hexacyano salts of formulation K<sub>4</sub>M<strong><sup>II</sup></strong>(CN)<sub>6</sub> (M = Fe, Os, Ru) caused <em>much</em> larger ET catalytic effects than those seen with any of the added halides or dicarboxylates. Consideration of the redox thermodynamics of the metal centers involved supports an interpretation of the catalysis based on hole-transfer quantum super-exchange mediation by virtual states corresponding to hole creation on the bridging anions in presumed ternary ionic assemblies involved in the ET transition state.</p>

Degree

thesis:*
Name thesis:degree_name
Master of Science in Chemistry
Level thesis:degree_level
Thesis
Discipline thesis:degree_discipline
Chemistry
Year dc:date.available
2014

Author and committee

dc:creator, dc:contributor.*
Author dc:creator
  • Magarian, Nicholas J
Contributors dc:contributor
  • Jeff Curtis

Subjects

dc:subject × 8

Identifiers

dc:identifier.*
Repository record dc:identifier
https://repository.usfca.edu/thes/101
OAI identifier oai:identifier
oai:repository.usfca.edu:thes-1113

Chain of custody

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University of San Francisco
Base URL
repository.usfca.edu/do/oai/
Last updated
2026-07-24
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citation

Magarian, Nicholas J. Mechanistic Studies of Salt Effects on Bimolecular Electron-Transfer Reactions of Pentaamine Ruthenium Pyridyl Complexes Studied by 19F NMR Line-Broadening and T2 Spin-Echo Techniques. Thesis thesis, 2014. https://repository.usfca.edu/thes/101