Dhamgaye Vishal, Laundy David, Baldock Sara, Moxham Thomas, Sawhney Kawal
Diamond Light Source, Harwell Science and Innovation Campus, Didcot, Oxon OX11 0DE, United Kingdom.
Department of Chemistry, Lancaster University, Lancaster LA1 4YB, United Kingdom.
J Synchrotron Radiat. 2020 Nov 1;27(Pt 6):1518-1527. doi: 10.1107/S1600577520011765. Epub 2020 Oct 19.
A refractive phase corrector optics is proposed for the compensation of fabrication error of X-ray optical elements. Here, at-wavelength wavefront measurements of the focused X-ray beam by knife-edge imaging technique, the design of a three-dimensional corrector plate, its fabrication by 3D printing, and use of a corrector to compensate for X-ray lens figure errors are presented. A rotationally invariant corrector was manufactured in the polymer IP-S using additive manufacturing based on the two-photon polymerization technique. The fabricated corrector was characterized at the B16 Test beamline, Diamond Light Source, UK, showing a reduction in r.m.s. wavefront error of a Be compound refractive Lens (CRL) by a factor of six. The r.m.s. wavefront error is a figure of merit for the wavefront quality but, for X-ray lenses, with significant X-ray absorption, a form of the r.m.s. error with weighting proportional to the transmitted X-ray intensity has been proposed. The knife-edge imaging wavefront-sensing technique was adapted to measure rotationally variant wavefront errors from two different sets of Be CRL consisting of 98 and 24 lenses. The optical aberrations were then quantified using a Zernike polynomial expansion of the 2D wavefront error. The compensation by a rotationally invariant corrector plate was partial as the Be CRL wavefront error distribution was found to vary with polar angle indicating the presence of non-spherical aberration terms. A wavefront correction plate with rotationally anisotropic thickness is proposed to compensate for anisotropy in order to achieve good focusing by CRLs at beamlines operating at diffraction-limited storage rings.
提出了一种用于补偿X射线光学元件制造误差的折射相位校正光学器件。本文介绍了通过刀口成像技术对聚焦X射线束进行波长处波前测量、三维校正板的设计、通过3D打印制造校正板以及使用校正器补偿X射线透镜形状误差的方法。基于双光子聚合技术,采用增材制造在聚合物IP-S中制造了一种旋转不变校正器。在英国钻石光源的B16测试光束线上对制造的校正器进行了表征,结果表明铍复合折射透镜(CRL)的均方根波前误差降低了六倍。均方根波前误差是波前质量的一个品质因数,但对于具有显著X射线吸收的X射线透镜,已经提出了一种均方根误差形式,其权重与透射X射线强度成正比。刀口成像波前传感技术被用于测量由98个和24个透镜组成的两组不同的铍CRL的旋转可变波前误差。然后使用二维波前误差的泽尼克多项式展开来量化光学像差。由于发现铍CRL波前误差分布随极角变化,表明存在非球面像差项,因此旋转不变校正板的补偿是部分的。提出了一种具有旋转各向异性厚度的波前校正板来补偿各向异性,以便在衍射极限存储环运行的光束线上通过CRL实现良好聚焦。