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5,10,15,20-TETRAKIS(PENTAFLUOROPHENYL)-21H,23H-PORPHINE IRON(III) CHLORIDE is a complex organic compound with a porphyrin structure, featuring four pentafluorophenyl groups attached to the periphery. This molecule is characterized by its unique electronic properties and stability, making it a versatile catalyst in various chemical reactions.

36965-71-6

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36965-71-6 Usage

Uses

Used in Chemical Industry:
5,10,15,20-TETRAKIS(PENTAFLUOROPHENYL)-21H,23H-PORPHINE IRON(III) CHLORIDE is used as a catalyst for epoxidations with peroxides, facilitating the conversion of olefins to epoxides, which are important intermediates in the synthesis of various chemicals and pharmaceuticals.
Used in Chemical Industry (Oxidative Decarbonylations):
5,10,15,20-TETRAKIS(PENTAFLUOROPHENYL)-21H,23H-PORPHINE IRON(III) CHLORIDE is used as a catalyst for oxidative decarbonylations, a process that involves the removal of a carbon monoxide molecule from organic compounds, leading to the formation of simpler molecules with potential applications in the synthesis of fuels and chemicals.
Used in Chemical Industry (Aliphatic Hydroxylations):
5,10,15,20-TETRAKIS(PENTAFLUOROPHENYL)-21H,23H-PORPHINE IRON(III) CHLORIDE is used as a catalyst for aliphatic hydroxylations, a reaction that introduces hydroxyl groups into aliphatic compounds, which can be further utilized in the production of various chemicals, pharmaceuticals, and materials.

Check Digit Verification of cas no

The CAS Registry Mumber 36965-71-6 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 3,6,9,6 and 5 respectively; the second part has 2 digits, 7 and 1 respectively.
Calculate Digit Verification of CAS Registry Number 36965-71:
(7*3)+(6*6)+(5*9)+(4*6)+(3*5)+(2*7)+(1*1)=156
156 % 10 = 6
So 36965-71-6 is a valid CAS Registry Number.
InChI:InChI=1/C44H8F20N4.ClH.Fe/c45-25-21(26(46)34(54)41(61)33(25)53)17-9-1-2-10(65-9)18(22-27(47)35(55)42(62)36(56)28(22)48)12-5-6-14(67-12)20(24-31(51)39(59)44(64)40(60)32(24)52)16-8-7-15(68-16)19(13-4-3-11(17)66-13)23-29(49)37(57)43(63)38(58)30(23)50;;/h1-8H;1H;/q-2;;+3/p-1/b17-9+,17-11+,18-10+,18-12+,19-13+,19-15+,20-14+,20-16+;;/rC44H8ClF20FeN4/c45-66-69-13-5-6-15(69)19(23-29(50)37(58)43(64)38(59)30(23)51)11-3-4-12(68-11)20(24-31(52)39(60)44(65)40(61)32(24)53)16-8-7-14(70(16)66)18(22-27(48)35(56)42(63)36(57)28(22)49)10-2-1-9(67-10)17(13)21-25(46)33(54)41(62)34(55)26(21)47/h1-8H/b17-9+,17-13+,18-10+,18-14+,19-11+,19-15+,20-12+,20-16+

36965-71-6 Well-known Company Product Price

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  • Aldrich

  • (252913)  5,10,15,20-Tetrakis(pentafluorophenyl)-21H,23H-porphyriniron(III)chloride  ≥95% (HPLC)

  • 36965-71-6

  • 252913-100MG

  • 1,709.37CNY

  • Detail

36965-71-6SDS

SAFETY DATA SHEETS

According to Globally Harmonized System of Classification and Labelling of Chemicals (GHS) - Sixth revised edition

Version: 1.0

Creation Date: Aug 13, 2017

Revision Date: Aug 13, 2017

1.Identification

1.1 GHS Product identifier

Product name iron(2+),10,12,13,23-tetrakis(2,3,4,5,6-pentafluorophenyl)-21H-porphyrin,dichloride

1.2 Other means of identification

Product number -
Other names Fe(III)(TPFPP)Cl

1.3 Recommended use of the chemical and restrictions on use

Identified uses For industry use only.
Uses advised against no data available

1.4 Supplier's details

1.5 Emergency phone number

Emergency phone number -
Service hours Monday to Friday, 9am-5pm (Standard time zone: UTC/GMT +8 hours).

More Details:36965-71-6 SDS

36965-71-6Relevant academic research and scientific papers

Rate-Limiting Step of Epoxidation Reaction of the Oxoiron(IV) Porphyrin π-Cation Radical Complex: Electron Transfer Coupled Bond Formation Mechanism

Fujii, Hiroshi,Hada, Masahiko,Ishimizu, Yuri,Ma, Zhifeng

, p. 17687 - 17698 (2021/12/01)

Epoxidation reactions catalyzed by high-valent metal-oxo species are key reactions in various biological and chemical processes. Because the redox potentials of alkenes are higher than those of most high-valent metal-oxo species, the electron transfer (ET

Iron(III) Complexation with Galactodendritic Porphyrin Species and Hydrocarbons’ Oxidative Transformations

Castro, Kelly A. D. F.,Westrup, Kátia C. M.,Silva, Sandrina,Pereira, Patrícia M. R.,Sim?es, Mário M. Q.,Neves, Maria da Gra?a P. M. S.,Cavaleiro, José A. S.,Tomé, Jo?o P. C.,Nakagaki, Shirley

, p. 2857 - 2869 (2021/07/14)

The iron metalation of the known free-base porphyrins H2P2 and H2P3, obtained by structural modification of the well-known TPPF20 (H2P1) with galactose dendritic units, gave the corresponding iron(III) porphyrin complex FeP2 and the solid hybrid material FeP3S. Their synthesis, characterization and catalytic efficacy toward the oxidation of the organic substrates (Z)-cyclooctene, cyclohexane and heptane, are reported. In this work, the possibility to modulate selectivity and chemical efficiency of the catalytic system by using simple and more sophisticated metalloporphyrins is demonstrated. Furthermore, the presence of the galactose dendrimer units at the meso-porphyrin ring positions can tune the oxidation at the terminal positions in linear alkanes. In addition, the FeP3S material was easily recovered and reused at least 3 times for the cyclooctene oxidation. The catalytic performance of material FeP3S, associated with their possibility of reuse, makes this material a promising catalyst.

Porphyrin Grafting on a Mercapto-Equipped Zr(IV)-Carboxylate Framework Enhances Photocatalytic Hydrogen Production

Diao, Yingxue,Li, Mu-Qing,Xu, Nanfeng,Xu, Zhengtao,Zhu, Xunjin

supporting information, p. 12643 - 12649 (2020/09/15)

We employ facile aromatic nucleophilic substitution between the mercapto (-SH) and arylfluoro (Ar-F) groups to achieve extensive and robust cross-linking of a coordination host by porphyrin guests that also serve the purpose of versatile postsynthetic fun

A comparative study of electrocatalytic hydrogen evolution by iron complexes of corrole and porphyrin from acetic acid and water

Zhong, Ya-Qian,Hossain, Md. Sahadat,Chen, Ying,Fan, Qi-Hang,Zhan, Shu-Zhong,Liu, Hai-Yang

, p. 399 - 406 (2019/02/19)

Iron complexes of corrole and porphyrin bearing electron-withdrawing meso-C6F5 groups had been used for the electrocatalytic evolution of hydrogen. In neutral buffer solution, evolution of hydrogen turnover frequency (TOF) values for iron corrole and iron porphyrin were 274 and 233?h?1 at an overpotential of 838?mV versus standard hydrogen electrode (SHE). The corresponding TOF values had dropped sharply to 19.79?h?1 and 14.36?h?1 in acetic acid media at an overpotential of 942?mV versus SHE. Interestingly, hydrogen evolution catalyzed by Fe(III) porphyrin was mainly via an Fe(I)-H intermediate, while a higher valent Fe(III)-H intermediate was observed for Fe(IV) corrole.

Fluorinated Porous Conjugated Polyporphyrins through Direct C?H Arylation Polycondensation: Preparation, Porosity, and Use as Heterogeneous Catalysts for Baeyer–Villiger Oxidation

Cao, Qiang,Yin, Qing,Chen, Qi,Dong, Zhi-Bing,Han, Bao-Hang

supporting information, p. 9831 - 9837 (2017/07/25)

By considering the high reactivity of fluorinated iron–porphyrin and good stability of porphyrin-based porous polymers, fluorinated iron–porphyrin conjugated porous polymers (FPOP-3–6) were synthesized through direct C?H arylation polymerization. The obtained materials are chemically and thermally stable, of which FPOP-3 exhibits the highest Brunauer–Emmett–Teller specific surface area (about 840 m2 g?1). For functional studies of the obtained polymers as heterogeneous catalysts, catalytic transformation of cycloketones into lactones by oxygen through Baeyer–Villiger oxidation was used as a model reaction. Fluorinated phenyl substituents of the iron–porphyrin not only are beneficial to the conversion, but also can stabilize the porphyrin to resist catalyst breakdown. The polymer FPOP-3, with high porosity, exhibits the best catalytic efficiency and recycling effect. The recovered catalyst also shows good catalytic activities after recycling three times with a small loss in yield.

Influence of substituents in meso-aryl groups of iron μ-oxo porphyrins on their catalytic activity in the oxidation of cycloalkanes

Tabor, Edyta,Po?towicz, Jan,Pamin, Katarzyna,Bas?g, Sylwia,Kubiak, W?adys?aw

, p. 342 - 349 (2016/10/09)

The aim of this work was to study the effect of substituents on the catalytic activity of iron μ-oxo porphyrins in oxidation of cycloalkanes. Electron-donating or electron-withdrawing substituents were introduced in meso-aryl groups of iron μ-oxo porphyrins. An important part of the work was the characterization of the catalysts, in particular their redox properties. Catalytic performance and selectivity were evaluated using cyclopentane, cyclohexane, and cyclooctane as model compounds. It was shown that not only electron-withdrawing but also electron-donating substituents improved the catalytic performance of iron μ-oxo complexes. Moreover, catalytic activity of iron μ-oxo porphyrins with electron-withdrawing substituents correlated with the half-wave potential E1/2while the catalytic activity of iron μ-oxo porphyrins with electron-donating substituents increased with the decrease of reduction potential ERED.

Iron(III) fluorinated porphyrins: Greener chemistry from synthesis to oxidative catalysis reactions

Rebelo, Susana L. H.,Silva, Andre M. N.,Medforth, Craig J.,Freire, Cristina

, (2016/05/24)

: Iron(III) fluorinated porphyrins play a central role in the biomimetics of heme enzymes and enable cleaner routes to the oxidation of organic compounds. The present work reports significant improvements in the eco-compatibility of the synthesis of 5,10,15,20-tetrakis-pentafluorophenylporphyrin (H2 TPFPP) and the corresponding iron complex [Fe(TPFPP)Cl], and the use of [Fe(TPFPP)Cl] as an oxidation catalyst in green conditions. The preparations of H2 TPFPP and [Fe(TPFPP)Cl] typically use toxic solvents and can be made significantly greener and simpler using microwave heating and optimization of the reaction conditions. In the optimized procedure it was possible to eliminate nitrobenzene from the porphyrin synthesis and replace DMF by acetonitrile in the metalation reaction, concomitant with a significant reduction of reaction time and simplification of the purification procedure. The Fe(III)porphyrin is then tested as catalyst in the selective oxidation of aromatics at room temperature using a green oxidant (hydrogen peroxide) and green solvent (ethanol). Efficient epoxidation of indene and selective oxidation of 3,5-dimethylphenol and naphthalene to the corresponding quinones is observed.

Synthesis of new metalloporphyrin derivatives from [5,10,15,20-tetrakis (pentafluorophenyl)porphyrin] and 4-mercaptobenzoic acid for homogeneous and heterogeneous catalysis

de F. Castro, Kelly A.D.,Sim?es, Mário M.Q.,da Gra?a P.M.S. Neves, Maria,Cavaleiro, José A.S.,Ribeiro, Ronny R.,Wypych, Fernando,Nakagaki, Shirley

, p. 9 - 19 (2018/04/09)

Synthetic metalloporphyrins are catalysts that can efficiently insert oxygen and other atoms such as nitrogen and sulfur in hydrocarbons and in a wide variety of other organic compounds. This work reports on a synthetic strategy to prepare new metalloporphyrins via structural modification of [5,10,15,20-tetrakis (pentafluorophenyl)porphyrin], or [H2(TPFPP)], with 4-mercaptobenzoic acid; it also describes their characterization and catalytic activity. The substituent groups present in the structure of the resulting porphyrins furnished structured solids, which could potentially serve as catalysts in heterogeneous medium. Investigation of the catalytic activity of the new derivatives in the oxidation of (Z)-cyclooctene, cyclohexane, and heptane, under homogeneous conditions, and in the oxidation of (Z)-cyclooctene, in heterogeneous medium, proved that the new metalloporphyrins constituted excellent catalysts for (Z)-cyclooctene epoxidation. As for alkane oxidation, they selectively gave the corresponding alcohol in good yields.

Formation of iron(III) meso-chloro-isoporphyrin as a reactive chlorinating agent from oxoiron(IV) porphyrin π-cation radical

Cong, Zhiqi,Kurahashi, Takuya,Fujii, Hiroshi

, p. 4469 - 4472 (2012/04/23)

Iron(III) isoporphyrin, a tautomer of porphyrin with a saturated meso carbon, is one of the isoelectronic forms of oxoiron(IV) porphyrin π-cation radical, which is known as an important reactive intermediate of various heme enzymes. The isoporphyrin has been believed to be incapable of catalyzing oxygenation and oxidation reactions. Here, we report that an oxoiron(IV) porphyrin π-cation radical can be converted to iron(III) meso-chloro- isoporphyrin in the presence of trifluoroacetic acid and chloride ion. More importantly, this study shows the first evidence that iron(III) meso-chloro-isoporphyrin is an excellent reactive agent for chlorinating aromatic compounds and olefins. The results of this study suggest that the mechanism involves electrophilic chlorination of substrate with iron(III) meso-chloro-isoporphyrin.

Chemoselective aerobic oxidation of 4-allylanisol by Fe(III) porphyrins in an aqueous system

Vakuliuk, Olena,Mutti, Francesco G.,Lara, Miguel,Gryko, Daniel T.,Kroutil, Wolfgang

supporting information; body text, p. 3555 - 3557 (2011/07/29)

The allyl moiety of 4-allyl-anisol was oxidized in the presence of a Fe(III) porphyrin derivative to the corresponding α,β-unsaturated aldehyde in an initial oxidation step with perfect chemoselectivity. Molecular oxygen was employed as the sole environmental innocuous oxidant. The reaction was performed in an aqueous buffer/CH2Cl2 mixture using the detergent Tween 80 to homogenize the system.

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