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January 29, 2010Journal of the American Chemical Society71 citations

Near-Stoichiometric Conversion of H 2 O 2 to Fe IV =O at a Nonheme Iron(II) Center. Insights into the O−O Bond Cleavage Step

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FLFeifei LiJEJason EnglandLQLawrence Que

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Abstract

Near-quantitative formation of an oxoiron(IV) intermediate Fe(IV)(O)(TMC)(CH(3)CN)(2+) (2) from stoichiometric H(2)O(2) was achieved with Fe(II)(TMC)(2+) (1) (TMC = 1,4,8,11-tetramethyl-1,4,8,11-tetraaza-cyclotetradecane). This important outcome is best rationalized by invoking a direct reaction between 1 and H(2)O(2) followed by a heterolytic O-O bond cleavage facilitated by an acid-base catalyst (2,6-lutidine in our case). A sizable H/D KIE of 3.7 was observed for the formation of 2, emphasizing the importance of proton transfer in the cleavage step. Pyridines with different pK(a) values were also investigated, and less basic pyridines were found to function less effectively than 2,6-lutidine. This study demonstrates that the reaction of Fe(II) with H(2)O(2) to form Fe(IV)= O can be quite facile. Two factors promote the near-stoichiometric conversion of H(2)O(2) to Fe(IV)=O in this case: (a) the low reactivity between 1 and 2 and (b) the poor H-atom abstracting ability of 2, which inhibits subsequent reaction with residual H(2)O(2). Both factors inhibit formation of the Fe(III) byproduct commonly found in reactions of Fe(II) complexes with H(2)O(2). These results may shed light into the nature of the O-O bond cleaving step in the activation of dioxygen by nonheme iron enzymes and in the first step of the Fenton reaction.

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Cite This Study

Li et al. (2010) studied this question.

synapsesocial.com/papers/6a6f9d88ce524a4339c383ddhttps://doi.org/10.1021/ja9101908
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