Department of Physics, Indian Institute of Technology Roorkee, Roorkee, Uttarakhand, 247667, India.
Polymer Research Center, Department of Chemical Science, Indian Institute of Science Education and Research, Kolkata, Mohanpur, 741246, India.
Sci Rep. 2019 May 13;9(1):7269. doi: 10.1038/s41598-019-43836-w.
Detection of nitroaromatic explosives with high sensitivity and selectivity is extremely important for civilian and military safety. Here, we report the synthesis and multimodal sensing applications of an emissive alanine based dansyl tagged copolymer P(MMA-co-Dansyl-Ala-HEMA) (DCP), synthesized by RAFT copolymerization. The fluorescent co-polymer exhibited high sensitivity and selectivity towards conventional nitroaromatic explosives such as DNT, TNT and TNP in solution at lower range of µM level and also with saturated vapor of NACs. The quantum yield of the co-polymer was measured to be very high (Φ = 77%) which make it an ideal candidate for sensing in solution as well as in vapor phase. The fluorescence signal from DCP copolymer gets significantly quenched upon addition of aliquots of DNT, TNT, and TNP. The Stern-Volmer constant was calculated to be very high. The quenching mechanism was further established by fluorescence up-conversion, time-resolved fluorescence and steady state absorption spectroscopy. The energetics of sensing process was calculated by Density Functional Theory (DFT) studies. We also fabricate a thin film polymer sensor which was able to detect nitroaromatic vapors with high selectivity. This opens up the possibility of building a low-cost and light-weight nitroaromatic explosives sensor for field use.
检测高灵敏度和选择性的硝基芳香族爆炸物对于民用和军事安全极为重要。在这里,我们报告了一种基于丙氨酸的丹磺酰基标记共聚高分子 P(MMA-co-Dansyl-Ala-HEMA) (DCP) 的合成及其多模式传感应用,该共聚高分子是通过 RAFT 共聚合成的。荧光共聚物在溶液中对常规硝基芳香族爆炸物(如 DNT、TNT 和 TNP)具有高灵敏度和选择性,检测下限低至微摩尔范围,并且对 NACs 的饱和蒸气也具有响应。共聚物的量子产率测量值非常高(Φ = 77%),这使其成为溶液和蒸气相传感的理想候选物。DCP 共聚物的荧光信号在加入 DNT、TNT 和 TNP 等分液后会显著猝灭。斯特恩-沃尔默常数计算值非常高。通过荧光上转换、时间分辨荧光和稳态吸收光谱进一步确定了猝灭机制。通过密度泛函理论 (DFT) 研究计算了传感过程的能量学。我们还制备了一种薄膜聚合物传感器,该传感器能够高选择性地检测硝基芳香族蒸气。这为构建用于现场使用的低成本、重量轻的硝基芳香族爆炸物传感器开辟了可能性。