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Cristobal Viedma

Publications and source records attributed to Cristobal Viedma.

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Selective chiral symmetry breaking: when 'Left' and 'Right' cannot coexist and 'Left' is the best option

Chiral symmetry breaking occurs when a physical or chemical process, with no preference for the production of one or other enantiomer, spontaneously generates a large excess of one of the two enantiomers: (L), left-handed or (D), right handed. Inorganic processes involving chiral products commonly yield a racemic mixture of both. However life on Earth uses only one type of amino acids (L) and one type of natural sugars (D). The origin of this selective chirality has remained a fundamental enigma in the origin of life since the time of Pasteur, some 140 years ago. Sodium bromate (NaBrO3) and sodium chlorate (NaClO3) when crystallize from an unstirred solution generates statistically equal numbers of left-handed (L) and right handed (D) chiral crystals. But when these two populations of crystals undergo a dissolution-crystallization phenomenon, they cannot coexist: one of them disappears in an irreversible competition process that nurtures the other one. From the viewpoint of energy, these two enantiomers can exist with an equal probability, thus the result of this competition in different systems would be populations of crystals either (L) or (D). But contradicting this theoretical prediction the handedness of the chiral crystals that win the competition and remain in solution in the different systems is almost always the same (99.2 percent for NaBrO3). We suggest that these results are the consequence of Parity-violating energy difference (PVED) between enantiomers and reinforce the idea of a key role of PVDE theory in the origin of biomolecular chirality on Earth.

cond-mat.other

Total Chiral Symmetry Breaking during Crystallization: Who needs a "Mother Crystal"?

Processes that can produce states of broken chiral symmetry are of particular interest to physics, chemistry and biology. Chiral symmetry breaking during crystallization of sodium chlorate occurs via the production of secondary crystals of the same handedness from a single "mother crystal" that seeds the solution. Here we report that a large and "symmetric" population of D- and L-crystals moves into complete chiral purity disappearing one of the enantiomers. This result shows: (i) a new symmetry breaking process incompatible with the hypothesis of a single "mother crystal"; (ii) that complete symmetry breaking and chiral purity can be achieved from an initial system with both enantiomers. These findings demand a new explanation to the process of total symmetry breaking in crystallization without the intervention of a "mother crystal" and open the debate on this fascinating phenomenon. We present arguments to show that our experimental data can been explained with a new model of "complete chiral purity induced by nonlinear autocatalysis and recycling".

cond-mat.other