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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

High Energy Radical Chemistry Formation of HCN-rich Atmospheres on early Earth.

Scientific reports 7:1 (2017) 6275

Authors:

Martin Ferus, Petr Kubelík, Antonín Knížek, Adam Pastorek, John Sutherland, Svatopluk Civiš

Abstract:

Recent results in prebiotic chemistry implicate hydrogen cyanide (HCN) as the source of carbon and nitrogen for the synthesis of nucleotide, amino acid and lipid building blocks. HCN can be produced during impact events by reprocessing of carbonaceous and nitrogenous materials from both the impactor and the atmosphere; it can also be produced from these materials by electrical discharge. Here we investigate the effect of high energy events on a range of starting mixtures representative of various atmosphere-impactor volatile combinations. Using continuously scanning time-resolved spectrometry, we have detected ·CN radical and excited CO as the initially most abundant products. Cyano radicals and excited carbon monoxide molecules in particular are reactive, energy-rich species, but are resilient owing to favourable Franck-Condon factors. The subsequent reactions of these first formed excited species lead to the production of ground-state prebiotic building blocks, principally HCN.
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Recording and evaluation of high resolution optical meteor spectra and comparative laboratory measurements using laser ablation of solid meteorite specimens

2017 19th International Conference on Transparent Optical Networks (ICTON) IEEE (2017) 1-4

Authors:

Martin Ferus, Jakub Koukal, Libor Lenza, Jiri Srba, Petr Kubelik, Vojtech Laitl, Ekaterina M Zanozina, Pavel Vana, Tereza Kaiserova, Antonin Knizek, Svatopluk Civis
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Formation of nucleobases in a Miller-Urey reducing atmosphere.

Proceedings of the National Academy of Sciences of the United States of America 114:17 (2017) 4306-4311

Authors:

Martin Ferus, Fabio Pietrucci, Antonino Marco Saitta, Antonín Knížek, Petr Kubelík, Ondřej Ivanek, Violetta Shestivska, Svatopluk Civiš

Abstract:

The Miller-Urey experiments pioneered modern research on the molecular origins of life, but their actual relevance in this field was later questioned because the gas mixture used in their research is considered too reducing with respect to the most accepted hypotheses for the conditions on primordial Earth. In particular, the production of only amino acids has been taken as evidence of the limited relevance of the results. Here, we report an experimental work, combined with state-of-the-art computational methods, in which both electric discharge and laser-driven plasma impact simulations were carried out in a reducing atmosphere containing NH3 + CO. We show that RNA nucleobases are synthesized in these experiments, strongly supporting the possibility of the emergence of biologically relevant molecules in a reducing atmosphere. The reconstructed synthetic pathways indicate that small radicals and formamide play a crucial role, in agreement with a number of recent experimental and theoretical results.
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Spontaneous oxygen isotope exchange between carbon dioxide and natural clays: Refined rate constants referenced to TiO2 (anatase/rutile)

Applied Clay Science Elsevier BV 137 (2017) 6-10

Authors:

Antonín Knížek, Markéta Zukalová, Ladislav Kavan, Arnošt Zukal, Petr Kubelík, Petr Rojík, Petr Skřehot, Martin Ferus, Svatopluk Civiš
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Spectroscopic investigations of high-energy-density plasma transformations in a simulated early reducing atmosphere containing methane, nitrogen and water.

Physical chemistry chemical physics : PCCP 18:39 (2016) 27317-27325

Authors:

Martin Civiš, Martin Ferus, Antonín Knížek, Petr Kubelík, Michal Kamas, Patrik Španěl, Ksenia Dryahina, Violetta Shestivska, Libor Juha, Petr Skřehot, Vojtěch Laitl, Svatopluk Civiš

Abstract:

Large-scale plasma was created in gas mixtures containing methane using high-power laser-induced dielectric breakdown (LIDB). The composition of the mixtures corresponded to a cometary and/or meteoritic impact into the early atmosphere of either Titan or Earth. A multiple-centimeter-sized fireball was created by focusing a single 100 J, 450 ps near-infrared laser pulse into the center of a 15 L gas cell. The excited reaction intermediates formed during the various stages of the LIDB plasma chemical evolution were investigated using optical emission spectroscopy (OES) with temporal resolution. The chemical consequences of laser-produced plasma generation in a CH4-N2-H2O mixture were investigated using high resolution Fourier-transform infrared absorption spectroscopy (FTIR) and gas selected ion flow tube spectrometry (SIFT). Several simple inorganic and organic compounds were identified in the reaction mixture exposed to ten laser sparks. Deuterated water (D2O) in a gas mixture was used to separate several of the produced isotopomers of acetylene, which were then quantified using the FTIR technique.
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