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Stacking of a Cofacially Stacked Iron Phthalocyanine Dimer on Graphite Achieved High Catalytic CH(4) Oxidation Activity Comparable to That of pMMO

[Image: see text] Numerous biomimetic molecular catalysts inspired by methane monooxygenases (MMOs) that utilize iron or copper-oxo species as key intermediates have been developed. However, the catalytic methane oxidation activities of biomimetic molecule-based catalysts are still much lower than t...

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Autores principales: Yamada, Yasuyuki, Morita, Kentaro, Sugiura, Takuya, Toyoda, Yuka, Mihara, Nozomi, Nagasaka, Masanari, Takaya, Hikaru, Tanaka, Kiyohisa, Koitaya, Takanori, Nakatani, Naoki, Ariga-Miwa, Hiroko, Takakusagi, Satoru, Hitomi, Yutaka, Kudo, Toshiji, Tsuji, Yuta, Yoshizawa, Kazunari, Tanaka, Kentaro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10052267/
https://www.ncbi.nlm.nih.gov/pubmed/37006766
http://dx.doi.org/10.1021/jacsau.2c00618
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author Yamada, Yasuyuki
Morita, Kentaro
Sugiura, Takuya
Toyoda, Yuka
Mihara, Nozomi
Nagasaka, Masanari
Takaya, Hikaru
Tanaka, Kiyohisa
Koitaya, Takanori
Nakatani, Naoki
Ariga-Miwa, Hiroko
Takakusagi, Satoru
Hitomi, Yutaka
Kudo, Toshiji
Tsuji, Yuta
Yoshizawa, Kazunari
Tanaka, Kentaro
author_facet Yamada, Yasuyuki
Morita, Kentaro
Sugiura, Takuya
Toyoda, Yuka
Mihara, Nozomi
Nagasaka, Masanari
Takaya, Hikaru
Tanaka, Kiyohisa
Koitaya, Takanori
Nakatani, Naoki
Ariga-Miwa, Hiroko
Takakusagi, Satoru
Hitomi, Yutaka
Kudo, Toshiji
Tsuji, Yuta
Yoshizawa, Kazunari
Tanaka, Kentaro
author_sort Yamada, Yasuyuki
collection PubMed
description [Image: see text] Numerous biomimetic molecular catalysts inspired by methane monooxygenases (MMOs) that utilize iron or copper-oxo species as key intermediates have been developed. However, the catalytic methane oxidation activities of biomimetic molecule-based catalysts are still much lower than those of MMOs. Herein, we report that the close stacking of a μ-nitrido-bridged iron phthalocyanine dimer onto a graphite surface is effective in achieving high catalytic methane oxidation activity. The activity is almost 50 times higher than that of other potent molecule-based methane oxidation catalysts and comparable to those of certain MMOs, in an aqueous solution containing H(2)O(2). It was demonstrated that the graphite-supported μ-nitrido-bridged iron phthalocyanine dimer oxidized methane, even at room temperature. Electrochemical investigation and density functional theory calculations suggested that the stacking of the catalyst onto graphite induced partial charge transfer from the reactive oxo species of the μ-nitrido-bridged iron phthalocyanine dimer and significantly lowered the singly occupied molecular orbital level, thereby facilitating electron transfer from methane to the catalyst in the proton-coupled electron-transfer process. The cofacially stacked structure is advantageous for stable adhesion of the catalyst molecule on the graphite surface in the oxidative reaction condition and for preventing decreases in the oxo-basicity and generation rate of the terminal iron-oxo species. We also demonstrated that the graphite-supported catalyst exhibited appreciably enhanced activity under photoirradiation owing to the photothermal effect.
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spelling pubmed-100522672023-03-30 Stacking of a Cofacially Stacked Iron Phthalocyanine Dimer on Graphite Achieved High Catalytic CH(4) Oxidation Activity Comparable to That of pMMO Yamada, Yasuyuki Morita, Kentaro Sugiura, Takuya Toyoda, Yuka Mihara, Nozomi Nagasaka, Masanari Takaya, Hikaru Tanaka, Kiyohisa Koitaya, Takanori Nakatani, Naoki Ariga-Miwa, Hiroko Takakusagi, Satoru Hitomi, Yutaka Kudo, Toshiji Tsuji, Yuta Yoshizawa, Kazunari Tanaka, Kentaro JACS Au [Image: see text] Numerous biomimetic molecular catalysts inspired by methane monooxygenases (MMOs) that utilize iron or copper-oxo species as key intermediates have been developed. However, the catalytic methane oxidation activities of biomimetic molecule-based catalysts are still much lower than those of MMOs. Herein, we report that the close stacking of a μ-nitrido-bridged iron phthalocyanine dimer onto a graphite surface is effective in achieving high catalytic methane oxidation activity. The activity is almost 50 times higher than that of other potent molecule-based methane oxidation catalysts and comparable to those of certain MMOs, in an aqueous solution containing H(2)O(2). It was demonstrated that the graphite-supported μ-nitrido-bridged iron phthalocyanine dimer oxidized methane, even at room temperature. Electrochemical investigation and density functional theory calculations suggested that the stacking of the catalyst onto graphite induced partial charge transfer from the reactive oxo species of the μ-nitrido-bridged iron phthalocyanine dimer and significantly lowered the singly occupied molecular orbital level, thereby facilitating electron transfer from methane to the catalyst in the proton-coupled electron-transfer process. The cofacially stacked structure is advantageous for stable adhesion of the catalyst molecule on the graphite surface in the oxidative reaction condition and for preventing decreases in the oxo-basicity and generation rate of the terminal iron-oxo species. We also demonstrated that the graphite-supported catalyst exhibited appreciably enhanced activity under photoirradiation owing to the photothermal effect. American Chemical Society 2023-01-10 /pmc/articles/PMC10052267/ /pubmed/37006766 http://dx.doi.org/10.1021/jacsau.2c00618 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Yamada, Yasuyuki
Morita, Kentaro
Sugiura, Takuya
Toyoda, Yuka
Mihara, Nozomi
Nagasaka, Masanari
Takaya, Hikaru
Tanaka, Kiyohisa
Koitaya, Takanori
Nakatani, Naoki
Ariga-Miwa, Hiroko
Takakusagi, Satoru
Hitomi, Yutaka
Kudo, Toshiji
Tsuji, Yuta
Yoshizawa, Kazunari
Tanaka, Kentaro
Stacking of a Cofacially Stacked Iron Phthalocyanine Dimer on Graphite Achieved High Catalytic CH(4) Oxidation Activity Comparable to That of pMMO
title Stacking of a Cofacially Stacked Iron Phthalocyanine Dimer on Graphite Achieved High Catalytic CH(4) Oxidation Activity Comparable to That of pMMO
title_full Stacking of a Cofacially Stacked Iron Phthalocyanine Dimer on Graphite Achieved High Catalytic CH(4) Oxidation Activity Comparable to That of pMMO
title_fullStr Stacking of a Cofacially Stacked Iron Phthalocyanine Dimer on Graphite Achieved High Catalytic CH(4) Oxidation Activity Comparable to That of pMMO
title_full_unstemmed Stacking of a Cofacially Stacked Iron Phthalocyanine Dimer on Graphite Achieved High Catalytic CH(4) Oxidation Activity Comparable to That of pMMO
title_short Stacking of a Cofacially Stacked Iron Phthalocyanine Dimer on Graphite Achieved High Catalytic CH(4) Oxidation Activity Comparable to That of pMMO
title_sort stacking of a cofacially stacked iron phthalocyanine dimer on graphite achieved high catalytic ch(4) oxidation activity comparable to that of pmmo
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10052267/
https://www.ncbi.nlm.nih.gov/pubmed/37006766
http://dx.doi.org/10.1021/jacsau.2c00618
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