Oxygenase mimicking immobilised iron complex catalysts for alkane hydroxylation with H2O2

被引:4
作者
Sakakura, Seiya [1 ]
Kitamoto, Ryunosuke [1 ]
Goto, Kazuki [1 ]
Miura, Seito [1 ]
Takeda, Takamasa [1 ]
Okamura, Masaya [1 ,3 ]
Fukatsu, Arisa [2 ]
Itoh, Shinobu [2 ]
Hikichi, Shiro [1 ,3 ]
机构
[1] Kanagawa Univ, Fac Engn, Dept Mat & Life Chem, Yokohama 2218686, Japan
[2] Osaka Univ, Grad Sch Engn, Dept Mol Chem, Div Appl Chem, 2-1 Yamadaoka, Suita 5650871, Japan
[3] Kanagawa Univ, Fac Chem & Biochem, Dept Appl Chem, Yokohama, Japan
基金
日本科学技术振兴机构;
关键词
SELECTIVE HYDROXYLATION; METHANE OXIDATION; REACTIVITY; SUPPORTS; BENZENE; LIGAND;
D O I
10.1039/d3cy00698k
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Immobilised iron complex catalysts with hydrophobic reaction fields that mimic the active sites of alkane hydroxylating enzymes were constructed into the mesopores of an SBA-15 type silicate support. The reaction of a chelating ligand (= L) anchored SBA-15 type support with (EtO)(3)SiC2H4CnF2n+1 and (Me3Si)(2)NH yielded the corresponding fluoroalkyl (= FC(n)) and trimethylsilyl group (= TMS)-modified supports L-SBA-FC(n)TMS with n = 4, 6, and 8. The ligand-anchored supports reacted with Fe(OTf)(2) or FeCl3 to yield the corresponding iron complex-immobilised catalysts. The structure, stability, and catalytic activity of the formed iron complexes depended on the anions of the used iron sources and the lengths of the fluoroalkyl chains. Examination of the cyclohexane oxidation with H2O2 revealed that the support decorated by longer fluoroalkyl chains and TMS was effective in improving the activity and alcohol selectivity of the iron complex immobilised catalysts. In a series of catalysts derived from Fe(OTf)(2), the longest fluoroalkyl chain (= FC(8)) modified catalyst was the most reactive and stable. In the FeCl3-derived double-hydrophobised catalysts, the FC(6) modified one exhibited higher activity compared to the FC(8) derivative. Propane oxidation catalysis of mononuclear iron complex-immobilised catalysts Fe(OTf)(2)/L-SBA-FC(n)TMS (where n = 6 or 8) demonstrated the substrate condensation effect of the hydrophobic pocket formed by the longer fluoroalkyl pillars. Formation of not only 2-propanol and acetone but also 1-propanol and propionaldehyde suggested the synergy of the strong radical characteristics of the generated active oxidant and the substrate concentration effect. The most active catalyst for the cyclohexane oxidation, FeCl3/L-SBA-FC(6)TMS, catalysed methane oxidation with H2O2: the products were methanol, formic acid, and methyl hydroperoxide, whereas no alkyl hydroperoxides formed in the oxidation of propane. Higher bond dissociation energy (= BDEC-H) of methane compared to propane resulted in decelerating the H atom abstraction (HAT) from methane by the oxidant formed on the iron complex while relatively accelerating the decomposition of H2O2.
引用
收藏
页码:4839 / 4846
页数:8
相关论文
共 50 条
[11]   Kinetic Analysis of H2O2 Activation by an Iron(III) Complex in Water Reveals a Nonhomolytic Generation Pathway to an Iron(IV)oxo Complex [J].
Miller, Christopher J. ;
Chang, Yingyue ;
Wegeberg, Christina ;
McKenzie, Christine J. ;
Waite, T. David .
ACS CATALYSIS, 2021, 11 (02) :787-799
[12]   Directed Hydroxylation of sp2 and sp3 C-H Bonds Using Stoichiometric Amounts of Cu and H2O2 [J].
Trammell, Rachel ;
D'Amore, Lorenzo ;
Cordova, Alexandra ;
Polunin, Pavel ;
Xie, Nan ;
Siegler, Maxime A. ;
Belanzoni, Paola ;
Swart, Marcel ;
Garcia-Bosch, Isaac .
INORGANIC CHEMISTRY, 2019, 58 (11) :7584-7592
[13]   Mechanism of Alkene, Alkane, and Alcohol Oxidation with H2O2 by an in Situ Prepared MnII/Pyridine-2-carboxylic Acid Catalyst [J].
Saisaha, Pattama ;
Dong, Jia Jia ;
Meinds, Tim G. ;
de Boer, Johannes W. ;
Hage, Ronald ;
Mecozzi, Francesco ;
Kasper, Johann B. ;
Browne, Wesley R. .
ACS CATALYSIS, 2016, 6 (06) :3486-3495
[14]   Highly Efficient Aromatic C-H Oxidation with H2O2 in the Presence of Iron Complexes of the PDP Family [J].
Tkachenko, Nikolay V. ;
Ottenbacher, Roman V. ;
Lyakin, Oleg Y. ;
Zima, Alexandra M. ;
Samsonenko, Denis G. ;
Talsi, Evgenii P. ;
Bryliakov, Konstantin P. .
CHEMCATCHEM, 2018, 10 (18) :4052-4057
[15]   Efficient epoxidation of olefins by H2O2 catalyzed by iron "helmet" phthalocyanines [J].
Skobelev, Igor Y. ;
Kudrik, Evgeny V. ;
Zalomaeva, Olga V. ;
Albrieux, Florian ;
Afanasiev, Pavel ;
Kholdeeva, Oxana A. ;
Sorokin, Alexander B. .
CHEMICAL COMMUNICATIONS, 2013, 49 (49) :5577-5579
[16]   Direct hydroxylation of benzene to phenol by supported vanadium substitution polyoxometalates using H2O2 as oxidant [J].
Yang, Yingwei ;
Tang, Ruiren .
RESEARCH ON CHEMICAL INTERMEDIATES, 2018, 44 (10) :5911-5922
[17]   Catalytic properties of Cr-containing heteropolytungstates in H2O2 participated reactions: H2O2 decomposition and oxidation of unsaturated hydrocarbons with H2O2 [J].
Kuznetsova, NI ;
Kuznetsova, LI ;
Likholobov, VA .
JOURNAL OF MOLECULAR CATALYSIS A-CHEMICAL, 1996, 108 (03) :135-143
[18]   Base-controlled mechanistic divergence between iron(iv)-oxo and iron(iii)-hydroperoxo in the H2O2 activation by a nonheme iron(ii) complex [J].
Bohn, Antoine ;
Chinaux-Chaix, Clemence ;
Cheaib, Khated ;
Guillot, Regis ;
Herrero, Christian ;
Senechal-David, Katell ;
Rebilly, Jean-Noel ;
Banse, Frederic .
DALTON TRANSACTIONS, 2019, 48 (45) :17045-17051
[19]   An Iron(III)-Monoamidate Complex Catalyst for Selective Hydroxylation of Alkane C-H Bonds with Hydrogen Peroxide [J].
Hitomi, Yutaka ;
Arakawa, Kengo ;
Funabiki, Takuzo ;
Kodera, Masahito .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2012, 51 (14) :3448-3452
[20]   Amphiphilic poly(ionic liquid)/Wells-Dawson-type phosphovanadomolybdate ionic composites as efficient and recyclable catalysts for the direct hydroxylation of benzene with H2O2 [J].
Li, Xinzhong ;
Xue, Hanyu ;
Lin, Qi ;
Yu, Aimin .
APPLIED ORGANOMETALLIC CHEMISTRY, 2020, 34 (05)