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Journal article

Towards understanding of electrolyte degradation in lithium-mediated non-aqueous electrochemical ammonia synthesis with gas chromatography-mass spectrometry

In Rsc Advances 2021, Volume 11, Issue 50, pp. 31487-31498
From

Department of Physics, Technical University of Denmark1

Surface Physics and Catalysis, Department of Physics, Technical University of Denmark2

VISION – Center for Visualizing Catalytic Processes, Centers, Technical University of Denmark3

Lithium-mediated electrochemical ammonia synthesis (LiMEAS) in non-aqueous media is a promising technique for efficient and green ammonia synthesis. Compared to the widely used Haber-Bosch process, the method reduces CO2 emissions to zero due to the application of green hydrogen. However, the non-aqueous medium encounters the alkali metal lithium and organic components at high negative potentials of electrolysis, which leads to formation of byproducts.

To assess the environmental risk of this synthesis method, standardized analytical methods towards understanding of the degradation level and consequences are needed. Here we report on the implementation of an approach to analyze the liquid electrolytes after electrochemical ammonia synthesis via high-resolution gas chromatography-mass spectrometry (GCMS).

To characterize the molecular species formed after electrolysis, electron ionization high-resolution mass spectrometry (EI-MS) was applied. The fragmentation patterns enabled the elucidation of the mechanisms of byproduct formation. Several organic electrolytes were analyzed and compared both qualitatively and quantitatively to ascertain molecular composition and degradation products.

It was found that the organic solvent in contact with metallic electrodeposited lithium induces solvent degradation, and the extent of this decomposition to different organic molecules depends on the organic solvent used. Our results show GCMS as a suitable technique for monitoring non-aqueous electrochemical ammonia synthesis in different organic electrolytes.

Language: English
Publisher: The Royal Society of Chemistry
Year: 2021
Pages: 31487-31498
ISSN: 20462069
Types: Journal article
DOI: 10.1039/d1ra05963g
ORCIDs: Sažinas, Rokas , Andersen, Suzanne Zamany , Li, Katja , Saccoccio, Mattia , Krempl, Kevin , Pedersen, Jakob Bruun , Kibsgaard, Jakob , Vesborg, Peter Christian Kjærgaard , Chorkendorff, Ib and Chakraborty, Debasish

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