Thuriot-Roukos J, Bennis M, Heuson E, Roussel P, Dumeignil F, Paul S
Univ. Lille, CNRS, Centrale Lille, ENSCL, Univ. Artois, UMR 8181 - UCCS - Unité de Catalyse et Chimie du Solide F-59000 Lille France
Univ. Lille, INRA, ISA, Univ. Artois, Univ. Littoral Côte d'Opale, EA 7394 - ICV - Institut Charles Viollette F-59000 Lille France.
RSC Adv. 2018 Dec 6;8(71):40912-40920. doi: 10.1039/c8ra08216b. eCollection 2018 Dec 4.
For powder catalyst characterization, Fourier Transform Infrared (FTIR), Raman, and X-Ray Fluorescence (XRF) spectrometers and X-Ray Diffraction (XRD) are available in high-throughput (HT) configurations, for example at the REALCAT platform to sequentially analyse multiple sets of samples. To remove the bottleneck resulting from the use of different sample holders for each equipment, a unique multi-well plate was developed. This paper details the design of such a plate including the selection of the fabrication material and the plate dimensioning based on the study of the 4 different physical interactions between matter and electromagnetic radiations for the aforementioned techniques. This new plate consists of a holder for removable wells enabling the avoidance of cross-contamination between samples. Raman, a focusing technique, has no strict constraint on the plate design. The number of wells, their geometry, spacing and dimensions were adjusted to deal with the constraints of IR optics. The well depth was set according to the XRF maximum penetration depth in the sample. The well diameter was optimized in order to obtain from the X-ray spot size the maximum achievable intensity. Poly-methyl-methacrylate (PMMA) was chosen as the material for the new plate due to its amorphous structure (no peak in XRD analysis) and ease with which it can be cut by a laser. Finally, the flatness of the multi-well plate was validated on the most challenging instrument: XRD. This new plate allows fast sample filling/preparation, requires small quantities of catalyst (50 to 80 mg) in each well and is compatible and convenient for HT experimentation.
对于粉末催化剂表征,傅里叶变换红外(FTIR)光谱仪、拉曼光谱仪、X射线荧光(XRF)光谱仪以及X射线衍射(XRD)仪都有高通量(HT)配置,例如在REALCAT平台上可对多组样品进行顺序分析。为消除因每种设备使用不同样品架而导致的瓶颈,开发了一种独特的多孔板。本文详细介绍了这种板的设计,包括制造材料的选择以及基于对上述技术中物质与电磁辐射之间4种不同物理相互作用的研究而进行的板尺寸确定。这种新板由用于可移除孔的支架组成,可避免样品之间的交叉污染。拉曼光谱作为一种聚焦技术,对板的设计没有严格限制。孔的数量、几何形状、间距和尺寸经过调整以应对红外光学的限制。孔的深度根据XRF在样品中的最大穿透深度设定。孔的直径经过优化,以便从X射线光斑尺寸获得最大可实现强度。由于聚甲基丙烯酸甲酯(PMMA)的非晶结构(XRD分析中无峰)以及易于用激光切割的特性,被选为新板的材料。最后,在最具挑战性的仪器XRD上验证了多孔板的平整度。这种新板允许快速进行样品填充/制备,每个孔只需少量催化剂(50至80毫克),并且与高通量实验兼容且方便。