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通过中微子在正交电场和磁场中与 N 的相互作用选择氨基酸手性。

Selection of Amino Acid Chirality via Neutrino Interactions with N in Crossed Electric and Magnetic Fields.

机构信息

1 Department of Physics and Joint Institute for Nuclear Astrophysics, Western Michigan University , Kalamazoo, Michigan, USA .

2 National Astronomical Observatory of Japan , Tokyo, Japan .

出版信息

Astrobiology. 2018 Feb;18(2):190-206. doi: 10.1089/ast.2017.1686. Epub 2017 Nov 21.

Abstract

Previous work has suggested that the chirality of the amino acids could be established in the magnetic field of a nascent neutron star from a core-collapse supernova or massive collapsar. The magnetic field would orient the N nuclei, and the alignment of its nuclear spin with respect to those of the electron antineutrinos emitted from the collapsing star would determine the probability of destruction of the N nuclei by interactions with the antineutrinos. Subsequent work estimated the bulk polarization of the N nuclei in large rotating meteoroids in such an environment. The present work adds a crucial piece of this model by describing the details by which the selective N nuclear destruction would produce molecular chiral selectivity. The effects of the neutrino-induced interactions on the N nuclei bound in amino acids polarized in strong magnetic fields are studied. It is shown that electric fields in the reference frame of the nuclei modify the magnetic field at the nucleus, creating nuclear magnetizations that are asymmetric in chirality. The antineutrino cross sections depend on this magnetization, creating a selective destructive effect. The environmental conditions and sites in which such a selection mechanism could occur are discussed. Selective destruction of D-enantiomers results in enantiomeric excesses which may be sufficient to drive subsequent autocatalysis necessary to produce the few-percent enantiomeric excesses found in meteorites and subsequent homochirality. Molecular quantum chemical calculations were performed for alanine, and the chirality-dependent effects studied were included. A preference for left-handed molecules was found, and enantiomeric excesses as high as 0.02% were estimated for molecules in the electromagnetic conditions expected from a core-collapse supernova. Key Words: Amino acids-Supernovae-Antineutrinos-Enantiomeric excess-Chirality. Astrobiology 18, 190-206.

摘要

先前的工作表明,氨基酸的手性可以在原初中子星的磁场中建立,该磁场来自核心坍缩超新星或大质量坍缩星。磁场会使 N 核定向,而其核自旋相对于来自坍缩星的电子反中微子的排列,将决定 N 核与反中微子相互作用的破坏概率。随后的工作估计了在这种环境中大型旋转流星体中 N 核的整体极化。本工作通过描述选择性 N 核破坏将产生分子手性选择性的细节,为该模型添加了一个关键部分。研究了中微子诱导相互作用对强磁场中极化的氨基酸中 N 核的影响。结果表明,核的参照系中的电场会改变核的磁场,从而产生手性不对称的核磁化。反中微子的截面取决于这种磁化,从而产生选择性的破坏效应。讨论了这种选择机制可能发生的环境条件和位置。D-对映异构体的选择性破坏会导致对映体过量,这可能足以驱动随后的自催化作用,从而产生在陨石中发现的少数对映体过量和随后的同手性。对丙氨酸进行了分子量子化学计算,并研究了手性相关的影响。发现对左手分子的偏好,并估计在电磁条件下,对映体过量高达 0.02%,这些条件预期来自核心坍缩超新星。关键词:氨基酸-超新星-反中微子-对映体过量-手性。天体生物学 18, 190-206。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e8a6/5820686/7e74c753d2af/fig-1.jpg

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