Abhishek Das, Nabhendu Pal, Jin Xiong, Victor G. Young, Jr., Yisong Guo, Marcel Swart, Lawrence Que, Jr.
{"title":"通过二级球环烷基取代对反应障碍的熵降作用,一系列 S = 1 FeIV═O 复合物的氢原子转移反应活性比 S = 2 [(TQA)FeIV═O]2+复合物提高 10 倍","authors":"Abhishek Das, Nabhendu Pal, Jin Xiong, Victor G. Young, Jr., Yisong Guo, Marcel Swart, Lawrence Que, Jr.","doi":"10.1021/jacs.4c10120","DOIUrl":null,"url":null,"abstract":"Nonheme iron enzymes utilize <i>S</i> = 2 iron(IV)-oxo intermediates as oxidants in biological oxygenations. In contrast, corresponding synthetic nonheme Fe<sup>IV</sup>═O complexes characterized to date favor the <i>S</i> = 1 ground state that generally shows much poorer oxidative reactivity than their <i>S</i> = 2 counterparts. However, one intriguing exception found by Nam a decade ago is the <i>S</i> = 1 [Fe<sup>IV</sup>(O)(Me<sub>3</sub>NTB)]<sup>2+</sup> complex (Me<sub>3</sub>NTB = [tris((<i>N</i>-methyl-benzimidazol-2-yl)methyl)amine], <b>1O</b>) with a hydrogen atom transfer (HAT) reactivity that is 70% that of the <i>S</i> = 2 [Fe<sup>IV</sup>(O)(TQA)]<sup>2+</sup> complex (TQA = tris(2-quinolylmethyl)amine, <b>3O</b>). In our efforts to further explore this direction, we have unexpectedly uncovered a family of new <i>S</i> = 1 complexes with HAT reaction rates beyond the currently reported limits in the tripodal ligand family, surpassing oxidation rates found for the <i>S</i> = 2 [Fe<sup>IV</sup>(O)(TQA)]<sup>2+</sup> complex by as much as an order of magnitude. This is achieved simply by replacing the secondary sphere methyl groups of the Me<sub>3</sub>NTB ligand with larger cycloalkyl-CH<sub>2</sub> (R groups in <b>2O</b><sup><b>R</b></sup>) moieties ranging from <i>c</i>-propylmethyl to <i>c</i>-hexylmethyl. These <b>2O</b><sup><b>R</b></sup> complexes show Mössbauer data at 4 K and <sup>1</sup>H NMR spectra at 193 and 233 K that reveal <i>S</i> = 1 ground states, in line with DFT calculations. Nevertheless, they give rise to the most reactive synthetic nonheme oxoiron(IV) complexes found to date within the tripodal ligand family. Our DFT study indicates transition state stabilization through entropy effects, similar to enzymatic catalysis.","PeriodicalId":49,"journal":{"name":"Journal of the American Chemical Society","volume":"63 1","pages":""},"PeriodicalIF":14.4000,"publicationDate":"2024-12-19","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"10-Fold Increase in Hydrogen Atom Transfer Reactivity for a Series of S = 1 FeIV═O Complexes Over the S = 2 [(TQA)FeIV═O]2+ Complex via Entropic Lowering of Reaction Barriers by Secondary Sphere Cycloalkyl Substitution\",\"authors\":\"Abhishek Das, Nabhendu Pal, Jin Xiong, Victor G. Young, Jr., Yisong Guo, Marcel Swart, Lawrence Que, Jr.\",\"doi\":\"10.1021/jacs.4c10120\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Nonheme iron enzymes utilize <i>S</i> = 2 iron(IV)-oxo intermediates as oxidants in biological oxygenations. In contrast, corresponding synthetic nonheme Fe<sup>IV</sup>═O complexes characterized to date favor the <i>S</i> = 1 ground state that generally shows much poorer oxidative reactivity than their <i>S</i> = 2 counterparts. However, one intriguing exception found by Nam a decade ago is the <i>S</i> = 1 [Fe<sup>IV</sup>(O)(Me<sub>3</sub>NTB)]<sup>2+</sup> complex (Me<sub>3</sub>NTB = [tris((<i>N</i>-methyl-benzimidazol-2-yl)methyl)amine], <b>1O</b>) with a hydrogen atom transfer (HAT) reactivity that is 70% that of the <i>S</i> = 2 [Fe<sup>IV</sup>(O)(TQA)]<sup>2+</sup> complex (TQA = tris(2-quinolylmethyl)amine, <b>3O</b>). In our efforts to further explore this direction, we have unexpectedly uncovered a family of new <i>S</i> = 1 complexes with HAT reaction rates beyond the currently reported limits in the tripodal ligand family, surpassing oxidation rates found for the <i>S</i> = 2 [Fe<sup>IV</sup>(O)(TQA)]<sup>2+</sup> complex by as much as an order of magnitude. This is achieved simply by replacing the secondary sphere methyl groups of the Me<sub>3</sub>NTB ligand with larger cycloalkyl-CH<sub>2</sub> (R groups in <b>2O</b><sup><b>R</b></sup>) moieties ranging from <i>c</i>-propylmethyl to <i>c</i>-hexylmethyl. These <b>2O</b><sup><b>R</b></sup> complexes show Mössbauer data at 4 K and <sup>1</sup>H NMR spectra at 193 and 233 K that reveal <i>S</i> = 1 ground states, in line with DFT calculations. Nevertheless, they give rise to the most reactive synthetic nonheme oxoiron(IV) complexes found to date within the tripodal ligand family. 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10-Fold Increase in Hydrogen Atom Transfer Reactivity for a Series of S = 1 FeIV═O Complexes Over the S = 2 [(TQA)FeIV═O]2+ Complex via Entropic Lowering of Reaction Barriers by Secondary Sphere Cycloalkyl Substitution
Nonheme iron enzymes utilize S = 2 iron(IV)-oxo intermediates as oxidants in biological oxygenations. In contrast, corresponding synthetic nonheme FeIV═O complexes characterized to date favor the S = 1 ground state that generally shows much poorer oxidative reactivity than their S = 2 counterparts. However, one intriguing exception found by Nam a decade ago is the S = 1 [FeIV(O)(Me3NTB)]2+ complex (Me3NTB = [tris((N-methyl-benzimidazol-2-yl)methyl)amine], 1O) with a hydrogen atom transfer (HAT) reactivity that is 70% that of the S = 2 [FeIV(O)(TQA)]2+ complex (TQA = tris(2-quinolylmethyl)amine, 3O). In our efforts to further explore this direction, we have unexpectedly uncovered a family of new S = 1 complexes with HAT reaction rates beyond the currently reported limits in the tripodal ligand family, surpassing oxidation rates found for the S = 2 [FeIV(O)(TQA)]2+ complex by as much as an order of magnitude. This is achieved simply by replacing the secondary sphere methyl groups of the Me3NTB ligand with larger cycloalkyl-CH2 (R groups in 2OR) moieties ranging from c-propylmethyl to c-hexylmethyl. These 2OR complexes show Mössbauer data at 4 K and 1H NMR spectra at 193 and 233 K that reveal S = 1 ground states, in line with DFT calculations. Nevertheless, they give rise to the most reactive synthetic nonheme oxoiron(IV) complexes found to date within the tripodal ligand family. Our DFT study indicates transition state stabilization through entropy effects, similar to enzymatic catalysis.
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