首页> 外文会议>Nanoengineering: Fabrication, Properties, Optics, and Devices IV; Proceedings of SPIE-The International Society for Optical Engineering; vol.6645 >Parallel optical tweezers with combining a diffractive optical element and a spatial light modulator for photonic DNA memory
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Parallel optical tweezers with combining a diffractive optical element and a spatial light modulator for photonic DNA memory

机译:平行光学镊子,结合了衍射光学元件和空间光调制器,用于光子DNA记忆

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To overcome the restriction of the density of optical memory systems due to diffraction limit, we have been studying photonic DNA memory, which utilizes photonic technologies and the DNA computing methodology. Our scheme is on the basis of local DNA reaction using laser irradiation and transportation of DNA using parallel optical tweezers with fabricating DNA clusters by attaching DNA onto beads. This paper reports on a new dynamic optical tweezers system, which combines a spatial light modulator (SLM) and a diffractive optical element (DOE) for manipulating DNA clusters. With this combination, real-time programmable manipulation of DNA clusters is achievable in a large spatial range. We also can choose simple patterns for the SLM, and decrease computation cost. In this experiment, a laser beam (633nm wavelength) illuminates a SLM (Hamamatsu Photonics K. K.; PPM8267), which is imaged on an 80-lp/mm transmission-type grating, then the beam is focused with a water immersible objective lens (x 100, NA 1). Simple blazed-phase patterns have different grating constants that are perpendicular to that of the grating are displayed on the SLM. We succeeded in lifting up three 6-micron-diameter polystyrene beads on a glass slide with light spots duplicated by the grating, then transporting the beads in three dimensions simultaneously with changing the grating constants on the SLM. We demonstrated that a same manipulation was implemented at different positions by duplicating a pattern that was generated when only using the SLM. This is usable in implementing a same operation for different data at multiple positions with a single instruction. The promising applications of the method include a nano-scale image memory with encryption.
机译:为了克服由于衍射极限引起的光学存储系统密度的限制,我们一直在研究利用光子技术和DNA计算方法的光子DNA存储器。我们的方案基于使用激光照射的局部DNA反应,并使用平行光镊将DNA附着到微珠上,从而制造出DNA簇,从而进行DNA的运输。本文报道了一种新的动态光镊系统,该系统结合了空间光调制器(SLM)和衍射光学元件(DOE)来操纵DNA簇。通过这种组合,可以在较大的空间范围内实现对DNA簇的实时可编程操作。我们还可以为SLM选择简单的模式,并降低计算成本。在此实验中,激光束(波长为633nm)照射到SLM(滨松光电有限公司; PPM8267)上,并在80-lp / mm透射型光栅上成像,然后用浸水的物镜(x 100,NA 1)。简单的闪耀相位图案具有与SLM上显示的垂直于光栅的垂直的不同光栅常数。我们成功地在载玻片上举起了三个直径为6微米的聚苯乙烯珠,这些光斑被光栅复制,然后在改变尺寸的同时,在SLM上以三维方式运输了珠。我们演示了通过复制仅使用SLM时生成的模式,可以在不同位置实现相同的操作。这可用于通过一条指令针对多个位置的不同数据执行相同的操作。该方法的有前途的应用包括具有加密的纳米级图像存储器。

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