Xu Dan, Zhu Wei, Wang Chen, Tian Tian, Cui Jiecheng, Li Jian, Wang Hui, Li Guangtao
Department of Chemistry, Tsinghua University, Beijing, 100084 (P.R. China).
Chemistry. 2014 Dec 8;20(50):16620-5. doi: 10.1002/chem.201404101. Epub 2014 Oct 21.
By combining molecular imprinting and colloidal crystal templating, molecularly imprinted inverse-opal photonic polymers (MIPPs) acting as sensing elements have been exploited to create sensor arrays for the first time. With this new strategy, abundant sensing elements with differential sensing abilities were easily accessible. Because of the unique hierarchical porous structure integrated in each sensing element, high sensitivity and selectivity, fast response and self-reporting (label-free) detection could be simultaneously achieved. All these fascinating features indicate that MIPPs are ideal sensing elements for creating sensor arrays. By integrating the individual sensing elements on a substrate, the formed array chip delivers better portability and high-throughput capability. As a demonstration, six kinds of contaminants were selected as analytes. The detection and discrimination of these analytes and even their mixtures in a wide range of concentrations, particularly trace amounts of analyte against a high background of other components, could be achieved, indicating the powerful capability of MIPPs-based sensor array for sensing. These results suggest that the described strategy opens a new route for sensor array creation and should find important applications in a wide range of areas.
通过结合分子印迹和胶体晶体模板技术,首次开发了用作传感元件的分子印迹反蛋白石光子聚合物(MIPPs)来创建传感器阵列。采用这种新策略,可以轻松获得具有不同传感能力的大量传感元件。由于每个传感元件都具有独特的分级多孔结构,因此可以同时实现高灵敏度和选择性、快速响应以及自报告(无标记)检测。所有这些迷人的特性表明,MIPPs是创建传感器阵列的理想传感元件。通过将各个传感元件集成在基板上,形成的阵列芯片具有更好的便携性和高通量能力。作为示例,选择了六种污染物作为分析物。可以实现对这些分析物及其混合物在广泛浓度范围内的检测和区分,特别是在其他成分的高背景下对痕量分析物的检测,这表明基于MIPPs的传感器阵列具有强大的传感能力。这些结果表明,所描述的策略为传感器阵列的创建开辟了一条新途径,并且应该在广泛的领域中找到重要应用。