posted on 2024-10-03, 11:36authored byNing-Ning Zhang, Mikhail Mychinko, Shu-Yang Gao, Linxiuzi Yu, Zhi-Li Shen, Liang Wang, Fei Peng, Zhonglin Wei, Zizhun Wang, Wei Zhang, Shoujun Zhu, Yang Yang, Tianmeng Sun, Luis M. Liz-Marzán, Sara Bals, Kun Liu
To achieve chiral amplification, life uses small chiral
molecules
as building blocks to construct hierarchical chiral architectures
that can realize advanced physiological functions. Inspired by the
chiral amplification strategy of nature, we herein demonstrate that
the chiral assembly of chiral gold nanorods (GNRs) leads to enhanced
optical asymmetry factors (g-factors), up to 0.24.
The assembly of chiral GNRs, dictated by structural self-matching,
leads to g-factors with over 100-fold higher values
than those of individual chiral GNRs, as confirmed by numerical simulations.
Moreover, the efficient optical asymmetry of chiral GNR assemblies
enables their application as highly sensitive sensors of adenosine
triphosphate (ATP detection limit of 1.0 μM), with selectivity
against adenosine diphosphate and adenosine monophosphate.