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Combination of Raman Microscopy, Multiwell Plate Experimental Designs, and BTEM Analysis for High-Throughput Experimentation

机译:拉曼显微镜,多孔板实验设计和高通量实验的BTEM分析相结合

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摘要

Both nonreactive and reactive multiwell plate experiments were combined with Raman microscopy and band-target entropy minimization (BTEM) analysis. The multicomponent nonreactive experiments showed that accurate pure component spectral estimation is possible without recourse to any spectral libraries. The multicomponent reactive experiments showed that, in addition to accurate pure component spectral estimation, concentration profiles can be obtained for quantitative purposes. In the present case, the solvent and time dependence of a cycloaddition reaction was addressed as the high-throughput experimentation issue. A total of 1152 experimental spectra were collected and analyzed. Two methods were used, namely, (A) each solvent set was individually analyzed and (B) the entire set of spectra, from 4 different solvents, were analyzed all together. Method B provided very satisfactory results. The present study with combined Raman-multiwell plate-BTEM analysis establishes proof of concept. The new approach appears to be applicable to other frequently conducted combinatorial/high-throughput experimentations. These include, but are not restricted to, chemo- and regioselective studies, solid-phase syntheses, etc.
机译:非反应性和反应性多孔板实验均与拉曼显微镜和带目标熵最小化(BTEM)分析相结合。多组分非反应性实验表明,无需借助任何光谱库即可进行准确的纯组分光谱估计。多组分反应性实验表明,除了准确的纯组分光谱估计外,还可以出于定量目的获得浓度曲线。在当前情况下,环加成反应的溶剂和时间依赖性已作为高通量实验问题解决。总共收集和分析了1152个实验光谱。使用了两种方法,即(A)对每种溶剂组分别进行分析,以及(B)对来自4种不同溶剂的整个光谱组进行一起分析。方法B提供了非常令人满意的结果。结合拉曼多孔板-BTEM分析的本研究建立了概念证明。新方法似乎适用于其他经常进行的组合/高通量实验。这些包括但不限于化学和区域选择性研究,固相合成等。

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