Modeling of catalytically active metal complex species and intermediates in reactions of organic halides electroreduction

文献情報

出版日 2015-01-05
DOI 10.1039/C4CP04218B
インパクトファクター 3.676
著者

Anton S. Lytvynenko, Sergey V. Kolotilov, Mikhail A. Kiskin, Igor L. Eremenko, Vladimir M. Novotortsev


原文を見る

要旨

The results of quantum chemical modeling of organic and metal-containing intermediates that occur in electrocatalytic dehalogenation reactions of organic chlorides are presented. Modeling of processes that take place in successive steps of the electrochemical reduction of representative C1 and C2 chlorides – CHCl3 and Freon R113 (1,1,2-trifluoro-1,2,2-trichloroethane) – was carried out by density functional theory (DFT) and second-order Møller–Plesset perturbation theory (MP2). It was found that taking solvation into account using an implicit solvent model (conductor-like screening model, COSMO) or considering explicit solvent molecules gave similar results. In addition to modeling of simple non-catalytic dehalogenation, processes with a number of complexes and their reduced forms, some of which were catalytically active, were investigated by DFT. Complexes M(L1)2 (M = Fe, Co, Ni, Cu, Zn, L1H = Schiff base from 2-pyridinecarbaldehyde and the hydrazide of 4-pyridinecarboxylic acid), Ni(L2) (H2L2 is the Schiff base from salicylaldehyde and 1,2-ethylenediamine, known as salen) and Co(L3)2Cl2, representing a fragment of a redox-active coordination polymer [Co(L3)Cl2]n (L3 is the dithioamide of 1,3-benzenedicarboxylic acid), were considered. Gradual changes in electronic structure in a series of compounds M(L1)2 were observed, and correlations between [M(L1)2]0 spin-up and spin-down LUMO energies and the relative energies of the corresponding high-spin and low-spin reduced forms, as well as the shape of the orbitals, were proposed. These results can be helpful for determination of the nature of redox-processes in similar systems by DFT. No specific covalent interactions between [M(L1)2]− and the R113 molecule (M = Fe, Co, Ni, Zn) were found, which indicates that M(L1)2 electrocatalysts act rather like electron transfer mediators via outer-shell electron transfer. A relaxed surface scan of the adducts {M(L1)2·R113}− (M = Ni or Co) versus the distance between the chlorine atom leaving during reduction and the corresponding carbon atom showed an energy barrier to electron transfer (the first stage of R113 catalytic reduction), while DFT optimization of the {Ni(L2)·R113}− adduct showed barrier-free decomposition. The difference between the stabilities of the {Ni(L1)2·R113}− and {Ni(L2)·R113}− adducts correlates with the difference between the catalytic activities of Ni(L1)2 and Ni(L2) in the electrochemical reduction of R113.

関連文献

Measuring ROS and redox markers in plant cells

Edward N. Smith, Emily Flashman

2021-06-29 Review Article

DOI: 10.1039/D1CB00071C

Short oligoalanine helical peptides for supramolecular nanopore assembly and protein cytosolic delivery

Marta Pazo, Giulia Salluce, Irene Lostalé-Seijo, Marisa Juanes, Rebeca Garcia-Fandiño, Javier Montenegro

2020-12-08 Paper

DOI: 10.1039/D0CB00103A

Contents list

Front/Back Matter

DOI: 10.1039/D0CB90003F

Deciphering the substrate recognition mechanisms of the heparan sulfate 3-O-sulfotransferase-3

Rylee Wander, Andrea M. Kaminski, Yongmei Xu, Vijayakanth Pagadala, Juno M. Krahn, Truong Quang Pham, Jian Liu, Lars C. Pedersen

2021-05-28 Paper

DOI: 10.1039/D1CB00079A

Membrane composition and lipid to protein ratio modulate amyloid kinetics of yeast prion protein

Arnab Bandyopadhyay, Achinta Sannigrahi, Krishnananda Chattopadhyay

2021-02-05 Paper

DOI: 10.1039/D0CB00203H

What's all the phos about? Insights into the phosphorylation state of the RNA polymerase II C-terminal domain via mass spectrometry

Blase M. LeBlanc, R. Yvette Moreno, Edwin E. Escobar, Mukesh Kumar Venkat Ramani, Jennifer S. Brodbelt

2021-06-03 Review Article

DOI: 10.1039/D1CB00083G

Macrocyclic DNA-encoded chemical libraries: a historical perspective

Louise Plais, Jörg Scheuermann

2021-10-29 Review Article

DOI: 10.1039/D1CB00161B

Identification of fragments binding to SARS-CoV-2 nsp10 reveals ligand-binding sites in conserved interfaces between nsp10 and nsp14/nsp16

Frank Kozielski, Céleste Sele, Vladimir O. Talibov, Jiaqi Lou, Danni Dong, Qian Wang, Xinyue Shi, Maria Nyblom, Annika Rogstam, Tobias Krojer, Wolfgang Knecht

2021-10-06 Paper

DOI: 10.1039/D1CB00135C

Finding and characterizing a catalytic antibody light chain, H34, capable of degrading the PD-1 molecule

Emi Hifumi, Hiroaki Taguchi, Tamami Nonaka, Takunori Harada, Taizo Uda

2020-12-10 Paper

DOI: 10.1039/D0CB00155D

Activatable cell-penetrating peptides: 15 years of research

Heleen de Jong, Kimberly M. Bonger, Dennis W. P. M. Löwik

2020-08-26 Review Article

DOI: 10.1039/D0CB00114G

こちらもおすすめ

化合物よくある質問

2-メトキシ-4-(メチルスルフィニル)アミンの主な用途は何ですか?

2-メトキシ-4-(メチルスルフィニル)アミンは、主に医薬品および農薬の製造に使用されます。また、合成化学の一部として研究用材料としても利用されます。

41608-73-52-Methoxy-4-(methyls...
化合物よくある質問

4-溴甲基-3-甲氧基苯甲酸は安全ですか?

安全ではありません。触覚や吸入に注意が必要で、適切な防護具を使用してください。

118684-13-24-(Bromomethyl)-3-me...
化合物よくある質問

4,6-二氯-N-甲基ピラミジンアミンの代替品はありますか?

代替品としては、4,6-二クロロピラミジンアミンや他のピラミジン系化合物が考えられます。ただし、目的と用途によって最適な代替品は異なります。

10397-15-64,6-Dichloro-N-methy...
化合物よくある質問

6-氯-4-甲基-1H-吲哚を含む廃棄物はどのように処理すべきですか?

6-氯-4-甲基-1H-吲哚の廃棄物は、適切な容器に収集し、密閉して保管します。温度は常温、湿度は低く、直射日光を避けて保管することを推奨します。廃棄処理は専門...

885520-84-36-chloro-4-methyl-1H...
化合物よくある質問

2-フローユロ-4-(トリフルオロメチル)ベンゾイドについて「に適用される法規ガイドラインは何ですか」

2-フローユロ-4-(トリフルオロメチル)ベンゾイドのCAS番号は207974-08-1です。この化合物はGHS分類で毒性物質と有害な反応物質として分類されます...

207974-08-1[2-Fluoro-4-(trifluo...
化合物よくある質問

4-ニトロフェニルN-[(ベンゼルオキシルカーボンイル]グリシングリシングリシン酸はどのように保存すればよいですか?

4-ニトロフェニルN-[(ベンゼルオキシルカーボンイル]グリシングリシングリシン酸は、室温で暗所に保管し、乾燥した環境で保存することを推奨します。容器は密閉性の...

19811-64-44-Nitrophenyl N-[(be...
化合物よくある質問

イソデスロラタドリンの代替品はありますか?

イソデスロラタドリンの代替品としては、デスロラタドリンや他の抗ヒスタミン薬が挙げられます。具体的には、デスロラタドリン、ラセカミド、フェルタドリンなどが、症状や...

183198-49-4Iso Desloratadine
化合物よくある質問

5-甲氧基-1,2,3,4-四氢异喹啉盐酸盐はどのように合成されますか?

5-甲氧基-1,2,3,4-四氢异喹啉盐酸盐の一般的な合成方法は、メタノール中で5-メトキシ-1,2,3,4-四ヒュドロイソキシンを塩酸で塩化します。この反応で...

103030-69-95-Methoxy-1,2,3,4-te...
化合物よくある質問

4-アミノ-5-メトキシ-2-トルエンサルホニック酸についての法規ガイドラインは何ですか?

CAS番号6471-78-9の4-アミノ-5-メトキシ-2-トルエンサルホニック酸は、GHS分類では corrosive(腐食性)と識別されます。EUのREAC...

6471-78-94-Amino-5-Methoxy-2-...
化合物よくある質問

甲基孕酮を取り扱う際の実験室安全事項は何ですか?

甲基孕酮の取り扱いは、PPE(個人保護具)の使用が必要な重要な安全事項を伴います。防塵マスク、ゴーグル、手袋を着用することが推奨されます。ドラフトチャンバーを使...

204063-33-22-[(Diphenylmethyl)a...

掲載誌

Physical Chemistry Chemical Physics

Physical Chemistry Chemical Physics
CiteScore: 5.5
自己引用率: 10.3%
年間論文数: 3036

Physical Chemistry Chemical Physics (PCCP) is an international journal co-owned by 19 physical chemistry and physics societies from around the world. This journal publishes original, cutting-edge research in physical chemistry, chemical physics and biophysical chemistry. To be suitable for publication in PCCP, articles must include significant innovation and/or insight into physical chemistry; this is the most important criterion that reviewers and Editors will judge against when evaluating submissions. The journal has a broad scope and welcomes contributions spanning experiment, theory, computation and data science. Topical coverage includes spectroscopy, dynamics, kinetics, statistical mechanics, thermodynamics, electrochemistry, catalysis, surface science, quantum mechanics, quantum computing and machine learning. Interdisciplinary research areas such as polymers and soft matter, materials, nanoscience, energy, surfaces/interfaces, and biophysical chemistry are welcomed if they demonstrate significant innovation and/or insight into physical chemistry. Joined experimental/theoretical studies are particularly appreciated when complementary and based on up-to-date approaches.

おすすめサプライヤー

免責事項
このページに表示される学術雑誌情報は、参考および研究目的のみを目的としています。当社は雑誌出版社とは提携しておらず、投稿の取り扱いも行っておりません。出版に関するお問い合わせは、各雑誌出版社に直接ご連絡ください。
表示されている情報に誤りがある場合は、support@chemtradehub.com までご連絡ください。迅速に確認し、対応いたします。