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首页> 外文期刊>ACS nano >Circular Dichroism of Chiral Molecules in DNA-Assembled Plasmonic Hotspots
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Circular Dichroism of Chiral Molecules in DNA-Assembled Plasmonic Hotspots

机译:DNA组装等离子体热点中手性分子的圆形二中间态

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The chiral state of a molecule plays a crucial role in molecular recognition and biochemical reactions. Because of this and owing to the fact that most modern drugs are chiral, the sensitive and reliable detection of the chirality of molecules is of great interest to drug development. The majority of naturally occurring biomolecules exhibit circular dichroism (CD) in the UV range. Theoretical studies and several experiments have demonstrated that this UV-CD can be transferred into the plasmonic frequency domain when metal surfaces and chiral biomolecules are in close proximity. Here, we demonstrate that the CD transfer effect can be drastically enhanced by placing chiral molecules, here double-stranded DNA, inside a plasmonic hotspot. By using different particle types (gold, silver, spheres, and rods) and by exploiting the versatility of DNA origami, we were able to systematically study the impact of varying particle distances on the CD transfer efficiency and to demonstrate CD transfer over the whole optical spectrum down to the near-infrared. For this purpose, nanorods were also placed upright on DNA origami sheets, forming strong optical antennas. Theoretical models, demonstrating the intricate relationships between molecular chirality and achiral electric fields, support our experimental findings. From both experimental measurements and theoretical considerations, we conclude that the transferred CD is most intensive for systems with strong plasmonic hotspots, as we find them in relatively small gaps (5-12 nm) between spherical nanoparticles and preferably between the tips of nanorods.
机译:分子的手性状态在分子识别和生物化学反应中起着至关重要的作用。因此,由于大多数现代药物是手性的,对药物开发的敏感和可靠的检测是对药物发育的影响。大多数天然存在的生物分子在紫外线范围内表现出圆形二色性(CD)。理论研究和几个实验表明,当金属表面和手性生物分子密切接近时,该UV-CD可以转移到等离子体频域中。在这里,我们证明可以通过将手性分子放置双链DNA,在等离子体热点内,通过将手性分子进行大幅增强CD转移效果。通过使用不同的粒子类型(金,银,球形和棒)并通过利用DNA折纸的多功能性,我们能够系统地研究不同颗粒距离对CD转移效率的影响,并在整个光学上展示CD转移光谱到近红外线。为此目的,纳米棒也直立于DNA折纸片上,形成强光学天线。理论模型,展示了分子手平性和展望电场之间的复杂关系,支持我们的实验结果。从实验测量和理论上考虑中,我们得出结论,转移的CD对于具有强大等离子体热点的系统最强烈的系统,因为我们在球形纳米颗粒之间找到它们在相对较小的间隙(5-12nm)中,并且优选地在纳米棒的尖端之间找到它们。

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