Academic literature on the topic 'Nitrate · Ostwald process · hydrogen carrier · electrocatalysis'

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Journal articles on the topic "Nitrate · Ostwald process · hydrogen carrier · electrocatalysis"

1

Cechanaviciute, Ieva A., and Wolfgang Schuhmann. "Electrocatalytic Ammonia Oxidation Reaction: Selective Formation of Nitrite and Nitrate as Value-Added Products." ChemSusChem 18 (March 18, 2025): e202402516. https://doi.org/10.1002/cssc.202402516.

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Ammonia (NH<sub>3</sub>) plays a pivotal role as a hydrogen carrier, offering a carbon-free energy alternative for sustainable energy systems. The ammonia electrooxidation reaction (AmOR) emerges as a promising avenue to leverage NH₃ in energy conversion and environmental applications. This review explores the multifaceted importance of NH<sub>3</sub> oxidation through three primary strategies: its integration into fuel cell technology for clean energy generation, its use in wastewater treatment for ammonia removal, and its application in electrolyzer setups for producing value-added products.
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2

Cechanaviciute, Ieva A., Bhawana Kumari, Lars Alfes, Corina Andronescu, and Wolfgang Schuhmann. "Gas Diffusion Electrodes for Electrocatalytic Oxidation of Gaseous Ammonia: Stepping Over the Nitrogen Energy Canyon." Angewandte Chemie International Edition 63 (June 24, 2024): e202404348. https://doi.org/10.1002/anie.202404348.

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As ammonia continues to gain more and more interest as a promising hydrogen carrier compound, so does the electrochemical ammonia oxidation reaction (AmOR). To avoid the liberation of H<sub>2</sub> in a reverse Haber&ndash;Bosch reaction under release of the energetically more favorable N<sub>2</sub>, we propose the oxidation of ammonia to value-added nitrite (NO<sub>2</sub><sup>&minus;</sup>), which is usually obtained during the Ostwald process. We investigated the anodic oxidation of gaseous ammonia directly supplied to a gas diffusion electrode (GDE) using a variety of compositionally diff
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3

Latvyte, Egle, Liang Wu, Xuanheng Zhu, Peter Vale, and John Graves. "(Digital Presentation) Electrocatalytic Ammonia Oxidation Coupled with Hydrogen Production - Moving Towards a Carbon Neutral Water Treatment Cycle." ECS Meeting Abstracts MA2022-01, no. 40 (2022): 1814. http://dx.doi.org/10.1149/ma2022-01401814mtgabs.

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Ammonia is a common pollutant, present in municipal wastewater streams. With the continuous shift of people moving to cities and the growing world’s population, the overall wastewater amount is rising. Current ammonia treatment processes in wastewater treatment plants include biological nitrification. Here the ammonia is converted to nitrate or nitrogen. Unfortunately, the capital and operational expenditure costs of such processing are high and the ammonia is converted to products that have no value. Ammonia is a carbon-free energy carrier. Recently, technological solutions have been introduc
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4

Harmon, Nia Jamaria, and Hailiang Wang. "Influence of Carbon Nanotube Support on Electrochemical Nitrate Reduction Catalyzed by a Cobalt Complex." ECS Meeting Abstracts MA2024-01, no. 39 (2024): 2324. http://dx.doi.org/10.1149/ma2024-01392324mtgabs.

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Access to clean water is a pressing environmental and public health concern. Excess nitrate (NO3 -) from the overuse of fertilizer finds its way into our surface water and groundwater, which leads to adverse health effects such as cancer and causes significant damage to ecosystems.1-4 The electrochemical nitrate reduction reaction (NO3RR) has emerged as a promising water treatment approach to address this issue. The NO3RR involves the transformation of waste NO3 - into value-added nitrogen species, such as ammonia (NH3), via reduction. NH3 serves as a valuable chemical in various applications,
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5

Cechanaviciute, Ieva, and Wolfgang Schuhmann. "Electrocatalytic Ammonia Oxidation Reactions: Selective Formation of Nitrite and Nitrate as Value‐Added Products." ChemSusChem, March 18, 2025. https://doi.org/10.1002/cssc.202402516.

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Abstract:
Ammonia (NH3) plays a pivotal role as a hydrogen carrier, offering a carbon‐free energy alternative for sustainable energy systems. The ammonia electrooxidation reaction (AmOR) emerges as a promising avenue to leverage NH₃ in energy conversion and environmental applications. This review explores the multifaceted importance of NH3 oxidation through three primary strategies: its integration into fuel cell technology for clean energy generation, its use in wastewater treatment for ammonia removal, and its application in electrolyzer setups for producing value‐added products. Special emphasis is p
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