Switchable Chiral Selection of Aspartic Acids by Dynamic States of Brushite
Author(s) -
Wenge Jiang,
Haihua Pan,
Zhisen Zhang,
Siyao Qiu,
J. Dongun Kim,
Xurong Xu,
Ruikang Tang
Publication year - 2017
Publication title -
journal of the american chemical society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 7.115
H-Index - 612
eISSN - 1520-5126
pISSN - 0002-7863
DOI - 10.1021/jacs.7b03116
Subject(s) - brushite , chemistry , enantiomer , chirality (physics) , dissolution , supersaturation , non equilibrium thermodynamics , adsorption , chemical physics , stereochemistry , thermodynamics , organic chemistry , phosphate , physics , chiral symmetry breaking , quantum mechanics , nambu–jona lasinio model , quark
We herein show the chiral recognition and separation of aspartic acid (Asp) enantiomers by achiral brushite due to the asymmetries of their dynamical steps in its nonequilibrium states. Growing brushite has a higher adsorption affinity to d-Asp, while l-Asp is predominant on the dissolving brushite surface. Microstructural characterization reveals that chiral selection is mainly attributed to brushite [101] steps, which exhibit two different configurations during crystal growth and dissolution, respectively, with each preferring a distinct enantiomer due to this asymmetry. Because these transition step configurations have different stabilities, they subsequently result in asymmetric adsorption. By varying free energy barriers through solution thermodynamic driving force (i.e., supersaturation), the dominant nonequilibrium intermediate states can be switched and chiral selection regulated. This finding highlights that the dynamic steps can be vital for chiral selection, which may provide a potential pathway for chirality generation through the dynamic nature.
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