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Accelerated single photon emission from dye molecule-driven nanoantennas assembled on DNA

机译:从组装在DNA上的染料分子驱动的纳米天线加速单光子发射

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A photon interacts efficiently with an atom when its frequency corresponds exactly to the energy between two eigenstates. But at the nanoscale, homogeneous and inhomogeneous broadenings strongly hinder the ability of solid-state systems to absorb, scatter or emit light. By compensating the impedance mismatch between visible wavelengths and nanometre-sized objects, optical antennas can enhance light–matter interactions over a broad frequency range. Here we use a DNA template to introduce a single dye molecule in gold particle dimers that act as antennas for light with spontaneous emission rates enhanced by up to two orders of magnitude and single photon emission statistics. Quantitative agreement between measured rate enhancements and theoretical calculations indicate a nanometre control over the emitter-particle position while 10 billion copies of the target geometry are synthesized in parallel. Optical antennas can thus tune efficiently the photo-physical properties of nano-objects by precisely engineering their electromagnetic environment.. ? 2012 Nature Publishing Group, a division of Macmillan Publishers Limited. All Rights Reserved.
机译:当光子的频率恰好与两个本征态之间的能量相对应时,光子就会与原子有效地相互作用。但是在纳米级,均匀和不均匀的增宽强烈阻碍了固态系统吸收,散射或发射光的能力。通过补偿可见波长和纳米级物体之间的阻抗失配,光学天线可以在较宽的频率范围内增强光物质的相互作用。在这里,我们使用DNA模板在金粒子二聚体中引入单个染料分子,该染料分子充当光的天线,其自发发射速率提高了两个数量级,并且具有单光子发射统计数据。测得的速率增强与理论计算之间的定量一致性表明,对发射体粒子位置进行了纳米级控制,同时并行合成了100亿个目标几何体。因此,光学天线可以通过精确设计其电磁环境来有效地调谐纳米物体的光物理特性。 2012自然出版集团,麦克米伦出版社有限公司的一个部门。版权所有。

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