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Compound refractive optics for the imaging and focusing of low-energy neutrons

机译:复合折射光学器件,用于低能中子的成像和聚焦

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Low-energy neutrons are essential for the analysis and characterization of materials and magnetic structures. However, both continuous (reactor-based) and pulsed (spallation-based) sources of such neutrons suffer from low fluence. Steering and lensing devices could improve this situation dramatically, so increasing spatial resolution, detectable sample volume limits and even perhaps opening the way for the construction of a neutron microscope. Neutron optics have to date exploited either Bragg diffraction, such as bent crystals, or reflection, as in mirror guides or a Kumakhov lens. Refractive optics remain an attractive alternative as they would permit full use of the beam cross-section, allow a compact and linear installation and, because of similarity to conventional optics, enable the use of commercial design and simulation tools. These advantages notwithstanding, single-element refractive optics have previously been considered impractical as they are too weakly focusing, too absorptive and too dispersive. Inspired by the recent demonstration of a compound refractive lens (CRL) for high-energy X-rays, we have designed, built and tested a prototype CRL for 9-20-A neutrons by using readily available optical components: our CRL has gains greater than 15 and focal lengths of 1-6 m, well matched to small-angle neutron scattering.
机译:低能中子对于材料和磁性结构的分析和表征至关重要。但是,这种中子的连续(基于反应器)和脉冲(基于定律)源均具有较低的通量。转向和透镜装置可以极大地改善这种情况,因此提高了空间分辨率,可检测的样品体积极限,甚至为中子显微镜的构建开辟了道路。迄今为止,中子光学器件要么利用布拉格衍射(例如弯曲的晶体),要么利用反射(如镜面反射镜或Kumakhov透镜)进行反射。折射光学器件仍然是一个有吸引力的替代方案,因为它们可以充分利用光束的横截面,可以实现紧凑且线性的安装,并且由于与常规光学器件相似,因此可以使用商业设计和仿真工具。尽管具有这些优点,但是以前单元素折射光学器件由于聚焦太弱,吸收性和色散性太弱而被认为是不切实际的。受最近用于高能X射线的复合折射透镜(CRL)演示的启发,我们通过使用容易获得的光学组件设计,制造和测试了9-20-A中子的CRL原型:我们的CRL取得了更大的进步大于15,焦距为1-6 m,与小角中子散射非常匹配。

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