首页> 外文期刊>Scientific reports. >A compact tunable quadrupole lens for brighter and sharper ultra-fast electron diffraction imaging
【24h】

A compact tunable quadrupole lens for brighter and sharper ultra-fast electron diffraction imaging

机译:用于更明亮和更清晰的超快速电子衍射成像的紧凑型调谐四极镜头

获取原文
           

摘要

In this article, we report our proof-of-principle design and experimental commissioning of a broadly tunable and low-cost transverse focusing lens system for MeV-energy electron beams. The lens system based on electromagnetic (EM) quadrupoles has been built as a part of the existing instrument for ultra-fast electron diffraction (UED) experiments at the Accelerator Test Facility II (ATF-II) at Brookhaven National Laboratory (BNL). We experimentally demonstrated the independent control of the size and divergence of the beam with the charge ranging from 1 to 13 pC. The charge density and divergence of the beam at the sample are the most important factors determining the quality of the Bragg-diffraction image (BDI). By applying the Robust Conjugate Directional Search (RCDS) algorithm for online optimization of the quadrupoles, the transverse beam size can be kept constant down to 75?μm from 1 to 13 pC. The charge density is nearly two orders of magnitude higher than the previously achieved value using a conventional solenoid. Using the BDI method we were able to extract the divergence of the beam in real-time and apply it to the emittance measurement for the first time. Our results agree well with simulations and with the traditional quadrupole scan method. The real-time divergence measurement opens the possibility of online optimization of the beam divergence (0.2 mrad) at the sample with the increased beam charge. This optimization is crucial for the future development of single-shot ultra-fast electron microscope (UEM). Finally, we demonstrated BDI with significant improvement, up to 3 times higher peak intensity and 2 times sharper Bragg-diffraction peaks at 13 pC. The charge is now limited by the laser power and increasing charge may improve the quality of BDI further. The capability we demonstrated here provides us with opportunities for new sciences using near-parallel, bright and ultrafast electron beams for single-shot imaging, to directly visualize the dynamics of defects and nanostructured materials, or even record molecular movie, which are impossible using present electron-beam technologies.
机译:在本文中,我们报告了我们的原则上的原则上和实验调试,用于MEV - 能量电子束的广泛可调和低成本的横向聚焦镜头系统。基于电磁(EM)Quadrupoles的镜头系统是在Brookhaven国家实验室(BNL)的加速器测试设施II(ATF-II)的超快速电子衍射(UED)实验的现有仪器的一部分。我们通过1至13个PC的电荷显示,实验证明了对光束的尺寸和分歧的独立控制。样品中光束的电荷密度和分歧是确定布拉格 - 衍射图像(BDI)质量的最重要因素。通过将稳健的共轭定向搜索(RCDS)算法应用于四元伞的在线优化,横梁尺寸可以从1到13个PC保持恒定到75Ωμm。电荷密度比使用常规螺线管的先前实现的值高几个数量级。使用BDI方法,我们能够实时提取光束的分歧并首次将其应用于发射率测量。我们的结果与仿真和传统的四极扫描方法很好。实时分歧测量打开随着梁充电的增加的束分歧(<0.2mRad)在线优化的可能性。这种优化对于单次超快速电子显微镜(UEM)的未来发展至关重要。最后,我们展示了BDI,具有显着改善,高达3倍的峰值强度,13个PC的尖锐型峰值峰值2倍。电荷现在受激光功率的限制,并且增加的电荷可以进一步提高BDI的质量。我们在此证明的能力为我们提供了使用近似平行,明亮和超快电子束的新科学的机会,以直接可视化缺陷和纳米结构材料的动态,甚至记录的分子电影,这是不可能使用现在的电子束技术。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号