State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, China.
Analyst. 2013 Sep 7;138(17):5129-36. doi: 10.1039/c3an00812f. Epub 2013 Jul 8.
A facile, ultrasensitive, and selective sensor strip utilizing 4-amino-3-penten-2-one (fluoral-p) functionalized electrospun polyacrylonitrile (PAN) (PAN/fluoral-p) nanofibrous membranes has been successfully developed for naked-eye colorimetric assay of formaldehyde. The sensor strips presented a significant reflectance decreasing band at 417 nm which induced a vivid color change from white to yellow and achieved a much lower naked-eye detection limit of 40 ppb compared with the World Health Organization standard (80 ppb). Based on the specific Hantzsch reaction between fluoral-p and formaldehyde, the as-prepared PAN/fluoral-p membranes are highly selective to formaldehyde with little interference from other volatile organic compounds and the proposed mechanism of this reaction is discussed carefully. Moreover, the colorimetric responses were visually quantitative using UV-vis spectra and the color difference calculated from L*, a*, b* values. Furthermore, due to the extremely large surface area and high porosity of the as-spun PAN nanofibrous membranes, the sensitivity of the nanofibrous membranes-based strips is much higher than traditional filter paper-based ones. Hence, such promising portable colorimetric sensor strips could not only potentially allow for assaying gaseous formaldehyde, but also facilitate the design and development of a novel colorimetric sensing system based on nanofibrous membranes.
一种基于 4-氨基-3-戊烯-2-酮(氟罗尔-P)功能化的静电纺聚丙烯腈(PAN)纳米纤维膜的简便、灵敏、选择性传感器条,已成功用于甲醛的肉眼比色分析。传感器条在 417nm 处呈现出显著的反射率降低带,诱导出从白色到黄色的鲜明颜色变化,并实现了比世界卫生组织标准(80ppb)低得多的肉眼检测限 40ppb。基于氟罗尔-P 与甲醛之间的特定 Hantzsch 反应,所制备的 PAN/氟罗尔-P 膜对甲醛具有高度选择性,对其他挥发性有机化合物的干扰很小,并仔细讨论了该反应的机制。此外,使用紫外可见光谱和 L*、a*、b*值计算的色差对比色响应进行了直观的定量。此外,由于纺丝 PAN 纳米纤维膜具有极大的比表面积和高孔隙率,基于纳米纤维膜的传感器条的灵敏度远高于传统的滤纸基传感器条。因此,这种有前途的便携式比色传感器条不仅可以潜在地用于测定气态甲醛,还可以促进基于纳米纤维膜的新型比色传感系统的设计和开发。