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Fluorination of Diamond Nanoparticles in Slow Neutron Reflectors Does Not Destroy Their Crystalline Cores and Clustering While Decreasing Neutron Losses

机译:在慢中子反射器中的金刚石纳米粒子的氟化不会破坏其晶体芯和聚类同时降低中子损失

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摘要

If the wavelength of radiation and the size of inhomogeneities in the medium are approximately equal, the radiation might be intensively scattered in the medium and reflected from its surface. Such efficient nanomaterial reflectors are of great scientific and technological interest. In previous works, we demonstrated a significant improvement in the efficiency of reflection of slow neutrons from a powder of diamond nanoparticles by replacing hydrogen located on the surface of nanoparticles with fluorine and removing the residual amorphous shells of nanoparticles via the fluorination process. In this paper, we study the mechanism of this improvement using a set of complementary experimental techniques. To analyze the data on a small-angle scattering of neutrons and X-rays in powders of diamond nanoparticles, we have developed a model of discrete-size diamond nanospheres. Our results show that fluorination does not destroy either the crystalline cores of nanoparticles or their clustering in the scale range of 0.6–200 nm. This observation implies that it does not significantly affect the neutron scattering properties of the powder. We conclude that the overall increase in reflectivity from the fluorinated nanodiamond powder is primarily due to the large reduction of neutron losses in the powder caused by the removal of hydrogen contaminations.
机译:如果辐射的波长和介质中的不均匀性的尺寸大致相等,则辐射可以在介质中强烈地散射并从其表面反射。这种有效的纳米材料反射器具有很大的科学和技术兴趣。在以前的作用中,我们通过用氟代替位于纳米颗粒表面上的氢并通过氟化方法除去纳米颗粒的残留无定形壳,从金刚石纳米颗粒的粉末中逐渐改善了从金刚石纳米粒子的粉末的反射效率的显着改善。在本文中,我们使用一组互补的实验技术研究了这种改进的机制。为了分析金刚石纳米粒子粉末中子和X射线的小角度散射的数据,我们开发了一种离散尺寸的金刚石纳米球模型。我们的结果表明,氟化不会破坏纳米颗粒的结晶芯或它们的聚类在0.6-200nm的范围内。该观察结果意味着它不会显着影响粉末的中子散射性能。我们得出结论,氟化纳米金刚胺粉末的反射率的总体增加主要是由于粉末中中子损失的大幅减少,从而引起的氢污染。

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