The 2020 plasma catalysis roadmap

Дорожная карта по плазменному катализу на 2020 год
Annemie Bogaerts, Xin Tu, J. Christopher Whitehead, Gabriele Centi, Leon Lefferts, Olivier Guaitella, Federico Azzolina-Jury, Hyun‐Ha Kim, Anthony B. Murphy, William F. Schneider, Tomohiro Nozaki, Jason C. Hicks, Antoine Rousseau, Frédéric Thévenet, Ahmed Khacef, Maria L. Carreon
2020-08-17

CH4 activationCO2 conversionNH3 synthesisair pollution controlplasma catalysis
Abstract Plasma catalysis is gaining increasing interest for various gas conversion applications, such as CO2 conversion into value-added chemicals and fuels, CH4 activation into hydrogen, higher hydrocarbons or oxygenates, and NH3 synthesis. Other applications are already more established, such as for air pollution control, e.g. volatile organic compound remediation, particulate matter and NOx removal. In addition, plasma is also very promising for catalyst synthesis and treatment. Plasma catalysis clearly has benefits over ‘conventional’ catalysis, as outlined in the Introduction. However, a better insight into the underlying physical and chemical processes is crucial. This can be obtained by experiments applying diagnostics, studying both the chemical processes at the catalyst surface and the physicochemical mechanisms of plasma-catalyst interactions, as well as by computer modeling. The key challenge is to design cost-effective, highly active and stable catalysts tailored to the plasma environment. Therefore, insight from thermal catalysis as well as electro- and photocatalysis is crucial. All these aspects are covered in this Roadmap paper, written by specialists in their field, presenting the state-of-the-art, the current and future challenges, as well as the advances in science and technology needed to meet these challenges.
1
Advances should integrate insights from thermal catalysis, electrocatalysis, and photocatalysis to address current and future challenges.
2
Plasma catalysis is being developed for CO2 conversion, CH4 activation, NH3 synthesis, and established air-pollution control applications.
3
Plasma offers advantages over conventional catalysis and shows promise for catalyst synthesis and treatment.
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Progress requires detailed diagnostics and modeling of catalyst-surface chemistry and physicochemical plasma–catalyst interactions.
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The central challenge is designing cost-effective, highly active, stable catalysts specifically tailored to plasma environments.

plasma catalysis for gas conversion, air pollution control, and catalyst synthesis and treatment

the underlying physical and chemical processes, plasma–catalyst interactions, and the design of cost-effective, highly active, stable catalysts tailored to the plasma environment

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2020-08-17
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Authors
Annemie Bogaerts
Xin Tu
J. Christopher Whitehead
Gabriele Centi
Leon Lefferts
Olivier Guaitella
Federico Azzolina-Jury
Hyun‐Ha Kim
Anthony B. Murphy
William F. Schneider
Tomohiro Nozaki
Jason C. Hicks
Antoine Rousseau
Frédéric Thévenet
Ahmed Khacef
Maria L. Carreon
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