首页> 外文期刊>Journal of combinatorial chemistry >Fluorescence Spectroscopy and Multivariate Spectral Descriptor Analysis for High-Throughput Multiparameter Optimization of Polymerization Conditions of Combinatorial 96-Microreactor Arrays
【24h】

Fluorescence Spectroscopy and Multivariate Spectral Descriptor Analysis for High-Throughput Multiparameter Optimization of Polymerization Conditions of Combinatorial 96-Microreactor Arrays

机译:高通量多参数优化组合96-微反应器阵列聚合条件的荧光光谱和多元光谱描述符分析

获取原文
获取原文并翻译 | 示例
           

摘要

Selection of optimum process conditions in combinatorial microreactors is essential if the combinatorial synthesis process is to be correlated with the synthesis process on a more conventional scale and the materials are to have the desired chemical properties. We have developed a new methodology for the high-throughput multiparamete optimization of polymerization reaction conditions in arrays of microreactors. Our strategy is based on the application of nondestructive spectroscopic techniques to measure chemical properties of polymers directly in individual microreactors followed by the multivariate spectral descriptor analysis for rapid determination of the optimal process conditions. We have demonstrated our strategy in the high-throughput multiparameter optimization of process conditions in thin-film melt polymerization reactions performed in 96-microreactor arrays for combinatorial screening of new polymerization catalysts. The combinatorial polymerization system was optimized for the best processing parameters using a set of input variables that included reactant parameters (relative amounts of starting components and catalyst loading) and processing variables (reaction time, reaction temperature, and inert gas flow rate). The measured output parameters were the chemical properties of materials and reproducibility of the material formation in replicate polymerizations in microreactors. Spatially resolved nondestructive evaluation of polymer formation was performed directly in individual microreactors and provided information about the spatial homogeneity of polymers in microreactors. It showed to be another powerful indicator of the reproducible polymerization process on the combinatorial scale. Although the methodology described here was implemented for high-throughput optimization of polymerization conditions, it is more general and can be further implemented for a variety of applications in which optimization of process parameters can be studied in situ or off-line using spectroscopic and other tools.
机译:如果要将组合合成过程与更常规规模的合成过程相关联,并且材料要具有所需的化学性质,则必须在组合微反应器中选择最佳工艺条件。我们已经开发出了一种用于微反应器阵列中聚合反应条件的高通量多参数优化的新方法。我们的策略是基于无损光谱技术的应用,直接在单个微反应器中测量聚合物的化学性质,然后进行多元光谱描述符分析,以快速确定最佳工艺条件。我们已经在高通量多参数优化工艺中证明了我们的策略,这些工艺条件是在96微反应器阵列中进行的薄膜熔体聚合反应中,用于组合筛选新的聚合催化剂。使用一组输入变量对组合聚合系统进行最佳化,以得到最佳的工艺参数,这些输入变量包括反应物参数(起始组分的相对量和催化剂负载量)和加工变量(反应时间,反应温度和惰性气体流速)。测得的输出参数是在微反应器中重复聚合中材料的化学性质和材料形成的可再现性。在单个微反应器中直接进行了聚合物形成的空间分辨非破坏性评估,并提供了有关微反应器中聚合物空间均匀性的信息。在组合规模上,它显示了可再生聚合过程的另一个有力指标。尽管此处描述的方法是针对聚合条件的高通量优化而实施的,但它是更通用的方法,可以进一步用于多种应用中,其中可以使用光谱仪和其他工具现场或离线研究工艺参数的优化。

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