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Selective sensing of volatile organic compounds using novel conducting polymer-metal nanoparticle hybrids

机译:使用新型导电聚合物-金属纳米粒子杂化剂选择性检测挥发性有机化合物

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Conducting polymer-metal nanoparticle hybrids, fabricated by assembling metal nanoparticles on top of functionalized conducting polymer film surfaces using conjugated linker molecules, enable the selective sensing of volatile organic compounds (VOCs). In these conducting polymer-metal nanoparticle hybrids, selectivity is achieved by assembling different metals on the same conducting polymer film. This eliminates the need to develop either different polymers chemistries or device configurations for each specific analyte. In the hybrids, chemisorption of the analyte vapor induces charge redistribution in the metal nanoparticles and changes their work function. The conjugated linker molecule causes this change in the work function of the tethered nanoparticles to affect the electronic states in the underlying conducting polymer film. The result is an easily measurable change in the resistance of the hybrid structure. The fabrication of these sensing elements involved the covalent assembly of nickel (Ni) and palladium (Pd) metal nanoparticles on top of poly(3,4-ethylenedioxythiophene-co-thiophene-3-acetic acid), poly(EDOT-co-TAA), films using 4-aminothiophenol linker molecules. The change in resistance of hybrid Pd/poly(EDOT-co-TAA) and Ni/poly(EDOT-co-TAA) hybrid films to acetone and toluene, respectively, is observed to be in proportion to their concentrations. The projected detection limits are 2 and 10 ppm for toluene and acetone, respectively. A negligible response (resistance change) of the Pd/poly(EDOT-co-TAA) films to toluene exposure confirmed its selectivity for detecting acetone. Similarly, lack of response to acetone confirmed the selectivity of the Ni/poly(EDOT-co-TAA) stacks for detecting toluene. It is anticipated that the assembly of other metals such as Ag, Au and Cu on top of poly(EDOT-co-TAA) would provide selectivity for detecting and discriminating other VOCs.
机译:通过使用共轭连接分子将金属纳米粒子组装在功能化的导电聚合物薄膜表面之上而制成的导电聚合物-金属纳米粒子杂化体,能够选择性地检测挥发性有机化合物(VOC)。在这些导电聚合物-金属纳米颗粒杂化物中,通过在同一导电聚合物膜上组装不同的金属来实现选择性。这样就无需为每种特定的分析物开发不同的聚合物化学或设备配置。在杂化物中,分析物蒸气的化学吸附会引起金属纳米粒子中电荷的重新分布并改变其功函数。共轭的连接分子导致拴系纳米颗粒功函数的这种变化,从而影响下面的导电聚合物薄膜中的电子态。结果是混合结构的电阻的易于测量的变化。这些感测元件的制造涉及将镍(Ni)和钯(Pd)金属纳米粒子共价组装在聚(3,4-乙撑二氧噻吩-共噻吩-3-乙酸),聚(EDOT-co-TAA)上),使用4-氨基硫酚连接分子的薄膜。观察到杂化Pd /聚(EDOT-co-TAA)和Ni /聚(EDOT-co-TAA)杂化膜对丙酮和甲苯的电阻变化分别与它们的浓度成比例。甲苯和丙酮的预计检出限分别为2和10 ppm。 Pd /聚(EDOT-co-TAA)膜对甲苯暴露的响应可忽略不计(电阻变化),证实了其检测丙酮的选择性。类似地,对丙酮的响应不足证实了Ni / poly(EDOT-co-TAA)烟囱对甲苯的选择性。可以预料,在聚(EDOT-co-TAA)上组装其他金属(例如Ag,Au和Cu)将为检测和区分其他VOC提供选择性。

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