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Pushing the Photon Limit: Nanoantennas Increase Maximal Photon Streamand Total Photon Number

机译:推动光子极限:纳米天线增加最大光子流和总光子数

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摘要

Nanoantennas are well-known for their effective role in fluorescence enhancement, both in excitation and emission. Enhancements of 3–4 orders of magnitude have been reported. Yet in practice, the photon emission is limited by saturation due to the time that a molecule spends in singlet and especially triplet excited states. The maximal photon stream restricts the attainable enhancement. Furthermore, the total number of photons emitted is limited by photobleaching. The limited brightness and observation time are a drawback for applications, especially in biology. Here we challenge this photon limit, showing that nanoantennas can actually increase both saturation intensity and photostability. So far, this limit-shifting role of nanoantennas has hardly been explored. Specifically, we demonstrate that single light-harvesting complexes, under saturating excitation conditions, show over a 50-fold antenna-enhanced photon emission stream, with 10-fold more total photons, up to 108 detected photons, before photobleaching. This work shows yet another facet of the great potential of nanoantennas in the world of single-molecule biology.
机译:纳米天线因其在激发和发射方面增强荧光的有效作用而闻名。据报道增强了3-4个数量级。然而实际上,由于分子花费在单重态,尤其是三重态激发态的时间,光子发射受到饱和的限制。最大光子流限制了可达到的增强。此外,发射的光子总数受到光漂白的限制。有限的亮度和观察时间是应用的缺点,特别是在生物学中。在这里,我们挑战这个光子极限,表明纳米天线实际上可以增加饱和强度和光稳定性。到目前为止,几乎没有研究过纳米天线的这种极限移动作用。具体来说,我们证明了在饱和激发条件下,单个光收集络合物显示了50倍天线增强的光子发射流,其中总光子增加了10倍,最多检测到10 8 个光子,在漂白之前。这项工作表明了纳米天线在单分子生物学世界中的巨大潜力。

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