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Dr Antonin Knizek

Postdoctoral Research Assistant

Research theme

  • Climate physics

Sub department

  • Atmospheric, Oceanic and Planetary Physics

Research groups

  • Earth Observation Data Group
antonin.knizek@physics.ox.ac.uk
Robert Hooke Building, room S46
  • About
  • Publications

Photochemical reduction of CO2 on terrestrial planets

International Conference on Transparent Optical Networks 2019-July (2019)

Authors:

S Civis, A Knizek, M Ferus, P Kubelik

Abstract:

The origin of methane on Mars and other terrestrial planets in their early or late stages of chemical evolution has never been explained in a satisfactory way. Here we propose a photochemistry-based scenario of carbon dioxide reduction to methane on semiconductor photocatalysts, such as TiO2. This approach takes inspiration in the same reaction chain used in environmental chemistry research since the late 1970s. On Mars, this scenario could unveil the origin of methane, which has been hotly debated recently. On young extra-terrestrial planets, this process could supply the atmosphere with reduced gases and facilitate organic synthesis and possibly the origin of life in these new born worlds.
More details from the publisher

Prebiotic synthesis initiated in formaldehyde by laser plasma simulating high-velocity impacts

Astronomy and Astrophysics 626 (2019)

Authors:

M Ferus, F Pietrucci, AM Saitta, O Ivanek, A Knizek, P Kubelík, M Krus, L Juha, R Dudzak, J Dostál, A Pastorek, L Petera, J Hrncirova, H Saeidfirozeh, V Shestivská, J Sponer, P Rimmer, S Civiš, G Cassone

Abstract:

Context. It is well known that hydrogen cyanide and formamide can universally be considered as key molecules in prebiotic synthesis. Despite the fact that formamide has been detected in interplanetary and interstellar environments, other prebiotic species are far more abundant, including, for example, formaldehyde. However, several results indicate that formamide can play the role of important intermediate as well as that of a feedstock molecule in chemical abiogenesis. Diverse recently proposed scenarios of the origins of the first biopolymers show that liquid formamide environments could have been crucial for the formation of nucleobases, nucleosides, and for phosphorylation reactions, which lead to nucleotides. Aims. Here we report on a wide exploration of the formaldehyde reaction network under plasma conditions mimicking an asteroid descent in an Earth-like atmosphere and its impact. Methods. Dielectric breakdown using a high-power kJ-class laser system (PALS - Prague Asterix Laser System) along with quantum mechanical, ab initio molecular dynamics, and enhanced sampling simulations have been employed in order to mimic an asteroid impact plasma. Results. Being more abundant than formamide both in interstellar and interplanetary environments, during the era of early and late heavy bombardment of Earth and other planets, formaldehyde might have been delivered on asteroids to young planets. In the presence of nitrogen-bearing species, this molecule has been reprocessed under plasma conditions mimicking the local environment of an impacting body. We show that plasma reprocessing of formaldehyde leads to the formation of several radical and molecular species along with formamide. Conclusion. All the canonical nucleobases, the simplest amino acid (i.e., glycine), and the sugar ribose, have been detected after treatment of formaldehyde and nitrogen gas with dielectric breakdown. Our results, supported by quantum mechanical and enhanced sampling simulations, show that formaldehyde - by producing inter alia formamide - may have had the role of starting substance in prebiotic synthesis.
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Formation of Methane and (Per)Chlorates on Mars

ACS Earth and Space Chemistry American Chemical Society (ACS) 3:2 (2019) 221-232

Authors:

Svatopluk Civiš, Antonín Knížek, Paul B Rimmer, Martin Ferus, Petr Kubelík, Markéta Zukalová, Ladislav Kavan, Elias Chatzitheodoridis
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Photoacoustic spectroscopy with mica and graphene micro-mechanical levers for multicomponent analysis of acetic acid, acetone and methanol mixture

Microchemical Journal Elsevier BV 144 (2019) 203-208

Authors:

Jan Suchánek, Pavel Janda, Michal Dostál, Antonín Knížek, Pavel Kubát, Petra Roupcová, Petr Bitala, Václav Nevrlý, Zdeněk Zelinger
More details from the publisher

Additional Views on Prebiotic Molecules

Chapter in SpringerBriefs in Molecular Science, Springer International Publishing (2019) 69-76

Authors:

Svatopluk Civiš, Martin Ferus, Antonín Knížek
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