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Detection of Materials of Interest to NonProliferation: A Novel Approach

机译:检测不扩散感兴趣的材料:一种新方法

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摘要

We propose the development of a novel detector that can locate and identify materials of interest to Nuclear Arms Non Proliferation. The device will combine nuclear acoustic resonance (NAR) with superconducting quantum interference device (SQUID) widely used in nuclear magnetic resonance (NMR), geophysics, nondestructive evaluations, and biomagnetism, to name only few. NAR works like NMR. Thus resonant absorption (of applied ultrasonic energy) by a nuclear spin system occurs when the ultrasonic frequency is equal to the appropriate frequency separations between the magnetic nuclear energy levels. Ultrasonic energy couples to the nuclear spin system via spin-phonon interaction. The resulting nuclear acoustic resonance can be detected via the changes in (a) ultrasonic attenuation, (b) ultrasonic velocity, (c) material magnetization, (d) or nuclear magnetic susceptibility, all of which carries "intrinsic and unique signatures" of the material under investigation. The device's sensitivity and penetration depth (into metals) will be enhanced by incorporating SQUID technology into the design. We will present the details of interaction physics and outline a plan of action needed to successfully transform the concepts into a practical detector.
机译:我们建议开发一种新颖的探测器,该探测器可以定位和识别核武器不扩散感兴趣的材料。该设备将结合核声共振(NAR)和超导量子干涉装置(SQUID),而超导量子干涉装置广泛用于核磁共振(NMR),地球物理学,无损评估和生物磁性,仅举几例。 NAR的工作原理类似于NMR。因此,当超声频率等于磁核能级之间的适当频率间隔时,就会发生核自旋系统的共振(吸收的超声能量)。超声波能量通过自旋声子相互作用耦合到核自旋系统。可以通过以下方式检测到所产生的核声共振:(a)超声波衰减,(b)超声波速度,(c)材料磁化强度,(d)或核磁化率,所有这些都带有“固有的和独特的特征”。正在调查的材料。通过将SQUID技术集成到设计中,可以提高设备的灵敏度和穿透深度(进入金属的深度)。我们将介绍相互作用物理学的详细信息,并概述将这些概念成功转化为实际检测器所需的行动计划。

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