In Situ Electrical Detection of Methane Oxidation on Atomically Thin IrO2 Nanosheet Films Down to Room Temperature

Author:

Ishihara Yoshiaki1,Koitaya Takanori2ORCID,Hamahiga Yuto1,Sugimoto Wataru3ORCID,Yamamoto Susumu4ORCID,Matsuda Iwao5ORCID,Yoshinobu Jun5ORCID,Nouchi Ryo167ORCID

Affiliation:

1. Department of Physics and Electronics Osaka Prefecture University Sakai Osaka 599–8570 Japan

2. Department of Chemistry Graduate School of Science Kyoto University Kyoto 606–8502 Japan

3. Research Initiative for Supra‐Materials (RISM) and Faculty of Textile Science and Technology Shinshu University Ueda Nagano 386–8567 Japan

4. International Center for Synchrotron Radiation Innovation Smart Tohoku University Sendai Miyagi 980–8577 Japan

5. Institute for Solid State Physics The University of Tokyo Kashiwa Chiba 277–8581 Japan

6. Department of Physics and Electronics Osaka Metropolitan University Sakai Osaka 599–8570 Japan

7. PRESTO Japan Science and Technology Agency Kawaguchi 332‐0012 Japan

Abstract

AbstractActivation of the CH bond is the first step in converting methane into valuable chemicals. Herein, the successful induction and electrical detection of a methane oxidation reaction are reported at room temperature using IrO2 nanosheets, a 2D form of IrO2. A clear decrease in electrical resistance upon exposure to methane is observed by using atomically thin IrO2 nanosheet films. The resistance decrease disappears upon simultaneous exposure to oxygen, suggesting that methane is oxidized by consuming the lattice oxygen of the IrO2 nanosheets and that the oxygen vacancies generated are recovered by oxygen in the atmosphere. The resistance decrease is observed even at 300 K, indicating the high methane oxidation ability of the IrO2 nanosheets. These results are confirmed by a shift of the Ir 4f peaks in ambient pressure X‐ray photoelectron spectra. Furthermore, deposition of amorphous carbon, that is, methane oxidation products, on IrO2 nanosheets is also confirmed by Raman scattering spectroscopy after prolonged methane exposure at high temperatures in the absence of oxygen. This study demonstrates the ability of IrO2 nanosheets to oxidize methane at least down to 300 K and is an important example of the usefulness and simplicity of chemical reaction monitoring using electrical resistance changes.

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials

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