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Polynucleotide-functionalized Gold Nanoparticles as Chemiresistive Vapor Sensing Elements

机译:多核苷酸官能化金纳米颗粒作为化学蒸气传感元件

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Chemiresistive vapor sensors combining sensing capabilities of functionalized gold nanoparticles and DNA have been investigated. The sensors are made by depositing DNA-functionalized gold nanoparticles onto microfabricated electrodes and subsequent drying to obtain a nanocomposite film. Comparisons are made between DNA-AuNP sensors and alkanethiol-AuNP sensors, revealing both similarities and differences. The sensors behave like alkanethiol-AuNP sensors in areas of sensitivity, reversibility, and response patterns. However, DNA-AuNP sensors are different in several ways. At high analyte vapor concentrations, the sensors response pattern towards water vapor is distinctively different from those towards organic vapors. At low analyte vapor conentrations with fixed relative humidity, a dual mechanism leads to peak response at intermediate humidity. In addition, the sensors reveal length-dependent and sequence dependent response patterns which facilitate distinguishability of vapor analytes. With this concept, vapor identification capabilities of nanoparticulate chemiresistive sensors can be further enhanced.
机译:研究了与官能化金纳米粒子和DNA的感测能力相结合的切削蒸气传感器。通过将DNA官能化的金纳米颗粒沉积在微制造电极上并随后干燥以获得纳米复合膜来制备传感器。在DNA-AUNP传感器和链烷硫醇-AUNP传感器之间进行比较,揭示了相似性和差异。传感器在灵敏度,可逆性和反应模式的区域中表现出链烷醇-AUNP传感器。然而,DNA-AUNP传感器以多种方式不同。在高分子体蒸汽浓度下,传感器响应水蒸气的响应图案与朝向有机蒸汽的响应图案不同。在具有固定相对湿度的低分析物蒸气癌处,双重机构导致中间湿度的峰值响应。另外,传感器揭示了长度依赖性和序列依赖性响应模式,其促进蒸气分析物的区分性。通过这种概念,可以进一步提高纳米颗粒化切削传感器的蒸气识别能力。

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