论文标题
相对论粒子不一致的晶体中的散射
Relativistic particle incoherent scattering in oriented crystals
论文作者
论文摘要
对齐原子串和定向晶体平面的颗粒挠度的一致过程伴随着原子核的不连贯散射。尽管轴向或平均平均电势描述的相干粒子挠度在高能量下变得越来越古典,但相对论颗粒的不连贯散射基本上仍然是量子。尽管后者在足够高的动量转移时提醒了无定形介质的原子的散射,但在最小的动量转移时,晶体中的不相干散射过程会因平面中原子分布的不均匀性的影响而经历了一些修饰,正常对晶体轴或平面。考虑到轴向情况是一个更一般的例子,我们提出了在定向晶体中不连贯散射的一致理论。后者考虑了量子散射性质和原子分布不均匀性,揭示了散射横截面概念的适用性有限。将量子散射特征纳入广泛使用的经典轨迹模拟的方法是使用新引入的均方根散射角度定义详细阐述的。
The coherent process of particle deflection by aligned atomic strings and planes of oriented crystals is accompanied by incoherent scattering by atomic cores. While the coherent particle deflection, described by the axial or planar averaged potential, becomes more and more classical at high energies, the incoherent scattering of relativistic particles remains essentially quantum. Though the latter reminds the scattering by atoms of amorphous medium at high enough momentum transfers, at the smallest ones the incoherent scattering process in crystals experiences some modification by the influence of the inhomogeneity of the atom distribution in the plane, normal to the crystal axis or plane. Considering the axial case as a more general example, we present a consistent theory of high energy particles incoherent scattering in oriented crystals. The latter takes into consideration both the quantum scattering nature and the atom distribution inhomogeneity, revealing the limited applicability of the scattering cross section notion. The way to incorporate the quantum scattering features into the widely used classical trajectory simulations is elaborated using newly introduced mean square scattering angle definition.