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Optical manipulation of semiconductor quantum dots in superfluid helium

机译:超流氦中半导体量子点的光学操纵

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We have experimentally demonstrated purely optical manipulation of wide-gap semiconductor CuCl quantum dots in superfluid helium. The superfluidity provides an ideal cryogenic frictionless environment for the manipulation. In order to introduce the quantum dots into liquid helium, small particles of CuCl with a broad size-distribution ranging from 10 nm to 10 &mgr;m in radius have been fabricated from a bulk sample by laser ablation in a helium cryostat. We irradiated these particles with laser light covering the excitonic resonance levels of the quantum dots smaller than 50 nm to push them by using resonant radiation force. As a result, we have found that many quantum dots of which sizes range from 10 to 50 nm were transported and sorted over a macroscopic distance, ~1 cm. Importantly, the excitonic resonance condition was crucial for this optical manipulation. The result means that the resonant radiation force for the quantum dots is much stronger than the gravitational force. Feasibility of size-selective manipulation is also discussed.
机译:我们在超流氦中通过实验表明了宽间隙半导体CuCl量子点的光学操纵。超浊度为操纵提供了理想的低温无摩擦环境。为了将量子点引入液氦中,通过10nm至10&mgr的宽尺寸分布的小颗粒具有10nm至10&mgr;通过激光烧蚀在氦低温恒温器中的激光烧蚀,由块状样品制成半径。我们用激光照射这些颗粒,覆盖小于50nm的量子点的激发器共振水平,以通过使用谐振辐射力推动它们。结果,我们发现,在宏观距离〜1cm的情况下,将其尺寸范围为10至50nm的许多量子点。重要的是,激发器共振条件对于该光学操纵至关重要。结果意味着量子点的谐振辐射力远比重力强大。还讨论了大小选择性操纵的可行性。

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