Chan K L Andrew, Kazarian Sergei G
Department of Chemical Engineering, South Kensington Campus, Imperial College London, London SW7 2AZ, United Kingdom.
J Comb Chem. 2005 Mar-Apr;7(2):185-9. doi: 10.1021/cc049840q.
Fourier transform infrared (FTIR) spectroscopic imaging with infrared array detectors has recently emerged as a powerful materials characterization tool. We report a novel application of FTIR imaging for high-throughput analysis of materials under controlled environment. This approach combines the use of spectroscopic imaging with an attenuated total reflection (ATR)-IR cell, microdroplet sample deposition system, and a device that controls humidity inside the cell. By this approach, it was possible to obtain "chemical snapshots" from a spatially defined array of many different polymer/drug formulations (more than 100) under identical conditions. This method provides direct measurement of materials properties for high-throughput formulation design and optimization. Simultaneous response (water sorption, crystallization, etc.) of the array of formulations to the environmental parameters was studied. Implications of the presented approach range from studies of smart polymeric materials and sensors to screening of pharmaceuticals and biomaterials.
采用红外阵列探测器的傅里叶变换红外(FTIR)光谱成像技术最近已成为一种强大的材料表征工具。我们报告了FTIR成像在可控环境下对材料进行高通量分析的新应用。这种方法将光谱成像与衰减全反射(ATR)-红外池、微滴样品沉积系统以及控制池内湿度的装置结合使用。通过这种方法,可以在相同条件下从许多不同聚合物/药物配方(超过100种)的空间定义阵列中获得“化学快照”。该方法为高通量配方设计和优化提供了材料性能的直接测量。研究了配方阵列对环境参数的同时响应(吸水、结晶等)。所提出方法的应用范围涵盖从智能高分子材料和传感器的研究到药物和生物材料的筛选。