论文标题
高级射频正时设备(ARARAT)技术和应用
Advanced Radio Frequency Timing AppaRATus (ARARAT) Technique and Applications
论文作者
论文摘要
描述了电子的晚期射频计时器的发展。它基于通过500 MHz射频场通过500 MHz射频场进行圆周或椭圆形的kev电子扫描。通过将入射电子的时间分布转换为圆或椭圆形上的命中位置分布,该设备实现了非常精确的时机。条纹摄像机基于类似的原理,通常在PS和SUB-PS时域运行,但具有大量缓慢的读数系统。在这里,我们报告了一种设备,其中由微通道板和延迟线阳极组成的位置传感器会产生〜ns持续时间脉冲,可以通过使用常规快速电子设备来处理。基于此技术的光子传感器,即射频光电材料管(RFPMT),已显示出〜10 ps的时序分辨率,时间稳定性为〜0.5 ps,fwhm。这使得该设备非常适合时间相关的单光子计数,该计算广泛用于光学显微镜和生物样品的断层扫描。概述了A. I. Alikhanyan国家科学实验室(AANL)终生测量石墨烯量子状态的第一个应用。接下来是对时间相关的弥漫性光学断层扫描,时间相关的刺激发射耗尽显微镜,混合脱节/Sted纳米镜检查和飞行时间发射断层扫描中潜在的RFPMT应用的描述。
The development of the advanced Radio Frequency Timer of electrons is described. It is based on a helical deflector, which performs circular or elliptical sweeps of keV electrons, by means of 500 MHz radio frequency field. By converting a time distribution of incident electrons to a hit position distribution on a circle or ellipse, this device achieves extremely precise timing. Streak Cameras, based on similar principles, routinely operate in the ps and sub-ps time domain, but have substantial slow readout system. Here, we report a device, where the position sensor, consisting of microchannel plates and a delay-line anode, produces ~ns duration pulses which can be processed by using regular fast electronics. A photon sensor based on this technique, the Radio Frequency Photo-Multiplier Tube (RFPMT), has demonstrated a timing resolution of ~10 ps and a time stability of ~0.5 ps, FWHM. This makes the apparatus highly suited for Time Correlated Single Photon Counting which is widely used in optical microscopy and tomography of biological samples. The first application in lifetime measurements of quantum states of graphene, under construction at the A. I. Alikhanyan National Science Laboratory (AANL), is outlined. This is followed by a description of potential RFPMT applications in time-correlated Diffuse Optical Tomography, time-correlated Stimulated Emission Depletion microscopy, hybrid FRET/STED nanoscopy and Time-of-Flight Positron Emission Tomography.