Chiral Selection, Isotopic Abundance Shifts, and Autocatalysis of Meteoritic Amino Acids
arXiv:2106.01531 · doi:10.1103/PhysRevResearch.3.033025
Abstract
The discovery of amino acids in meteorites has presented two clues to the origin of their processing subsequent to their formation: a slight preference for left-handedness in some of them, and isotopic anomalies in some of their constituent atoms. In this article we present theoretical results from the Supernova Neutrino Amino Acid Processing (SNAAP) model, which uses electron anti-neutrinos and the magnetic fields from source objects such as supernovae or colliding neutron stars to selectively destroy one amino acid chirality and to create isotopic abundance shifts. For plausible magnetic fields and electron anti-neutrino fluxes, non-zero, positive enantiomeric excesses, s, defined to be the relative left/right asymmetry in an amino acid population, are reviewed for two amino acids, and conditions are suggested that would produce for all of the -amino acids. The relatively high energy anti-neutrinos that produce the s would inevitably also produce isotopic anomalies. A nuclear reaction network was developed to describe the reactions resulting from them and the nuclides in the meteorites. At similar anti-neutrino fluxes, assumed recombination of the detritus from the anti-neutrino interactions is shown to produce appreciable isotopic anomalies in qualitative agreement with those observed for D/H and N/N. The isotopic anomalies for C/C are predicted to be small, as are also observed. Autocatalysis may be necessary for any model to produce the largest s observed in meteorites. This allows the constraints of the original SNAAP model to be relaxed, increasing the probability of meteoroid survival in sites where amino acid processing is possible. These results have obvious implications for the origin of life on Earth.
24 pages, 8 figures, to be published in Physical Review Research
References in corpus (13)
- Gravitational Waves and Gamma-rays from a Binary Neutron Star Merger: GW170817 and GRB 170817A
- Origin of the heavy elements in binary neutron-star mergers from a gravitational wave event
- INTEGRAL Detection of the First Prompt Gamma-Ray Signal Coincident with the Gravitational Wave Event GW170817
- The X-ray counterpart to the gravitational wave event GW 170817
- Formation of methyl formate and other organic species in the warm-up phase of hot molecular cores
- Neutrino-driven winds from neutron star merger remnants
- Complex organic molecules in protoplanetary disks
- Initial characterization of interstellar comet 2I/Borisov
- Neutrino Nucleus Reactions based on New Shell Model Hamiltonians
- Amino Acid Chiral Selection Via Weak Interactions in Stellar Environments: Implications for the Origin of Life
- Measurement of the Neutron-Proton and Neutron-Carbon Total Cross Section from 150 to 800 keV
- Neutron Star Planets: Atmospheric processes and habitability
- Explaining the Variations in Isotopic Ratios in Meteoritic Amino Acids