Mauro N A, Vogt A J, Derendorf K S, Johnson M L, Rustan G E, Quirinale D G, Kreyssig A, Lokshin K A, Neuefeind J C, An Ke, Wang Xun-Li, Goldman A I, Egami T, Kelton K F
Department of Physics, North Central College, Naperville, Illinois 60540, USA.
Instrument and Source Division, Oak Ridge National Laboratory, Oak Ridge, Tennessee 37831, USA.
Rev Sci Instrum. 2016 Jan;87(1):013904. doi: 10.1063/1.4939194.
Neutron diffraction studies of metallic liquids provide valuable information about inherent topological and chemical ordering on multiple length scales as well as insight into dynamical processes at the level of a few atoms. However, there exist very few facilities in the world that allow such studies to be made of reactive metallic liquids in a containerless environment, and these are designed for use at reactor-based neutron sources. We present an electrostatic levitation facility, NESL (for Neutron ElectroStatic Levitator), which takes advantage of the enhanced capabilities and increased neutron flux available at spallation neutron sources (SNSs). NESL enables high quality elastic and inelastic neutron scattering experiments to be made of reactive metallic and other liquids in the equilibrium and supercooled temperature regime. The apparatus is comprised of a high vacuum chamber, external and internal neutron collimation optics, and a sample exchange mechanism that allows up to 30 samples to be processed between chamber openings. Two heating lasers allow excellent sample temperature homogeneity, even for samples approaching 500 mg, and an automated temperature control system allows isothermal measurements to be conducted for times approaching 2 h in the liquid state, with variations in the average sample temperature of less than 0.5%. To demonstrate the capabilities of the facility for elastic scattering studies of liquids, a high quality total structure factor for Zr64Ni36 measured slightly above the liquidus temperature is presented from experiments conducted on the nanoscale-ordered materials diffractometer (NOMAD) beam line at the SNS after only 30 min of acquisition time for a small sample (∼100 mg).
金属液体的中子衍射研究提供了关于多个长度尺度上固有拓扑和化学有序性的宝贵信息,以及对少数原子水平上动力学过程的洞察。然而,世界上能够在无容器环境中对活性金属液体进行此类研究的设施非常少,而且这些设施是为基于反应堆的中子源设计的。我们展示了一种静电悬浮装置,NESL(中子静电悬浮器),它利用了散裂中子源(SNS)增强的能力和增加的中子通量。NESL能够在平衡和过冷温度范围内对活性金属和其他液体进行高质量的弹性和非弹性中子散射实验。该装置由一个高真空腔室、外部和内部中子准直光学器件以及一个样品交换机制组成,该机制允许在腔室开口之间处理多达30个样品。两台加热激光器即使对于接近500毫克的样品也能实现出色的样品温度均匀性,并且一个自动温度控制系统允许在液态下进行接近2小时的等温测量,平均样品温度变化小于0.5%。为了展示该装置用于液体弹性散射研究的能力,在散裂中子源的纳米级有序材料衍射仪(NOMAD)光束线上,对一个小样品(约100毫克)仅采集30分钟后,给出了在略高于液相线温度下测量的Zr64Ni36的高质量总结构因子。