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Improving the Performance of Supported Ionic Liquid Phase Catalysts for the Ultra-Low-Temperature Water Gas Shift Reaction Using Organic Salt Additives (CROSBI ID 311629)

Prilog u časopisu | izvorni znanstveni rad | međunarodna recenzija

Wolf, Patrick ; Wick, Christian R. ; Mehler, Julian ; Blaumeiser, Dominik ; Schötz, Simon ; Bauer, Tanja ; Libuda, Jörg ; Smith, David ; Smith, Ana-Sunčana ; Haumann, Marco Improving the Performance of Supported Ionic Liquid Phase Catalysts for the Ultra-Low-Temperature Water Gas Shift Reaction Using Organic Salt Additives // ACS Catalysis, 12 (2022), 9; 5661-5672. doi: 10.1021/acscatal.1c05979

Podaci o odgovornosti

Wolf, Patrick ; Wick, Christian R. ; Mehler, Julian ; Blaumeiser, Dominik ; Schötz, Simon ; Bauer, Tanja ; Libuda, Jörg ; Smith, David ; Smith, Ana-Sunčana ; Haumann, Marco

engleski

Improving the Performance of Supported Ionic Liquid Phase Catalysts for the Ultra-Low-Temperature Water Gas Shift Reaction Using Organic Salt Additives

The water gas shift reaction (WGSR) is catalyzed by supported ionic liquid phase (SILP) systems containing homogeneous Ru complexes dissolved in ionic liquids (ILs). These systems work at very low temperatures, that is, between 120 and 160 °C, as compared to >200 °C in the conventional process. To improve the performance of this ultra-low-temperature catalysis, we investigated the influence of various additives on the catalytic activity of these SILP systems. In particular, the application of methylene blue (MB) as an additive doubled the activity. Infrared spectroscopy measurements combined with density functional theory (DFT) calculations excluded a coordinative interaction of MB with the Ru complex. In contrast, state-of-the-art theoretical calculations elucidated the catalytic effect of the additives by non-covalent interactions. In particular, the additives can significantly lower the barrier of the rate-determining step of the reaction mechanism via formation of hydrogen bonds. The theoretical predictions, thereby, showed excellent agreement with the increase of experimental activity upon variation of the hydrogen bonding moieties in the additives investigated.

water gas shift reaction ; supported ionic liquid phase ; ruthenium ; methylene blue ; electronic interaction

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Podaci o izdanju

12 (9)

2022.

5661-5672

objavljeno

2155-5435

10.1021/acscatal.1c05979

Povezanost rada

Fizika, Interdisciplinarne prirodne znanosti, Kemija

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