Twisted Metal—Amino Acid Nanobelts: Chirality Transcription from Molecules to Frameworks.

We have studied the self–assembly process of a typical biocoordination polymer, Ag(l)/cysteine (Cys), with different chiralities of the amino acid. Self–assembly of Ag(l)/L–Cys leads to production of pure right–handed helical nanobelts, whereas Ag(l)/D–Cys gives rise to the "mirror image", i.e., pur...

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Detalles Bibliográficos
Publicado en:Journal of the American Chemical Society Vol. 132; no. 23; pp. 8202 - 8210
Autores principales: Chao Li, Ke Deng, Zhiyong Tang, Lei Jiang
Formato: Artículo
Publicado: American Chemical Society 6/16/2010
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Acceso en línea:Ver este registro en EBSCOhost
Descripción
Sumario:We have studied the self–assembly process of a typical biocoordination polymer, Ag(l)/cysteine (Cys), with different chiralities of the amino acid. Self–assembly of Ag(l)/L–Cys leads to production of pure right–handed helical nanobelts, whereas Ag(l)/D–Cys gives rise to the "mirror image", i.e., pure left–handed helical nanobelts. As a comparison, racemic Ag(l)/DL–Cys forms a totally different product, two–dimensional achiral nanosheets. Density functional theory simulation revealed that the molecular chirality of Cys is originally programmed in the specific lattice twisting, which further determines the chirality and dimensionality of the assembly products. This understanding will shed light on comprehending chirality transcription in metal–organic frameworks as well as designing chirality–regulated nanosuperstructures.