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A novel high spatial resolution recording method of far-infrared digital hologram based on vanadium dioxide film

机译:基于二氧化钒膜的新型远红外数字全息图高分辨率记录方法

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In this paper we present a novel method to record high spatial resolution far-infrared (FIR) hologram. This method takes advantage of the photo-induced phase transition characteristic of vanadium dioxide(VO_2) film. The light path is off-axis digital hologram recording path, while the VO_2 film is kept in constant temperature in front of the recording high resolution CMOS sensor. In the setup, the far infrared light from CO_2 laser changes the partial transmittance of VO_2 film to visible light, then a read-out visible laser is used to measure the transmittance of VO_2 film, and subsequently the results are recorded by a high resolution CMOS sensor. So that with utilizing the photo-induced phase transition of VO_2 film, we can use CMOS sensor to record far-infrared digital hologram. As the pixel pitch of CMOS sensor is much smaller than tradition FIR sensor, the recorded FIR digital hologram has been much improved. Moreover, the transition speed of VO_2 film is in nanosecond scale which means that far-infrared fast-moving object recording and hologram video could be achieved. In our experiments we used different objects to compare the spatial recording resolution and the experiments prove that our method can record higher spatial spatial resolution than traditional FIR digital hologram. It has the potential to become a more effective FIR digital hologram record method. Further research will focus on the simplified light path and FIR hologram video record and process.
机译:在本文中,我们提出了一种记录高空间分辨率远红外(FIR)全息图的新方法。该方法利用了二氧化钒(VO_2)薄膜的光诱导相变特性。光路是离轴数字全息图记录路径,而VO_2膜在记录高分辨率CMOS传感器的前面保持恒温。在该设置中,来自CO_2激光器的远红外光将VO_2膜的部分透射率变为可见光,然后使用读出的可见激光测量VO_2膜的透射率,随后将结果记录在高分辨率CMOS中传感器。因此,利用VO_2薄膜的光诱导相变,我们可以使用CMOS传感器记录远红外数字全息图。由于CMOS传感器的像素间距比传统的FIR传感器小得多,因此已记录的FIR数字全息图有了很大的改进。此外,VO_2薄膜的转变速度为纳秒级,这意味着可以实现远红外快速移动的物体记录和全息视频。在我们的实验中,我们使用不同的对象来比较空间记录分辨率,并且实验证明我们的方法可以记录比传统FIR数字全息图更高的空间分辨率。它有可能成为更有效的FIR数字全息记录方法。进一步的研究将集中在简化的光路和FIR全息图的视频记录和处理上。

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