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Porphyrins-Functionalized Single-Walled Carbon Nanotubes Chemiresistive Sensor Arrays for VOCs

机译:卟啉官能化的单壁碳纳米管Chemiratistive传感器阵列

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摘要

Single-walled carbon nanotubes (SWNTs) have been used extensively for sensor fabrication due to its high surface to volume ratio, nanosized structure and interesting electronic property. Lack of selectivity is a major limitation for SWNTs-based sensors. However, surface modification of SWNTs with a suitable molecular recognition system can enhance the sensitivity. On the other hand, porphyrins have been widely investigated as functional materials for chemical sensor fabrication due to their several unique and interesting physico-chemical properties. Structural differences between free-base and metal substituted porphyrins make them suitable for improving selectivity of sensors. However, their poor conductivity is an impediment in fabrication of prophyrin-based chemiresistor sensors. The present attempt is to resolve these issues by combining freebase- and metallo-porphyrins with SWNTs to fabricate SWNTs-porphyrin hybrid chemiresistor sensor arrays for monitoring volatile organic carbons (VOCs) in air. Differences in sensing performance were noticed for porphyrin with different functional group and with different central metal atom. The mechanistic study for acetone sensing was done using field-effect transistor (FET) measurements and revealed that the sensing mechanism of ruthenium octaethyl porphyrin hybrid device was governed by electrostatic gating effect, whereas iron tetraphenyl porphyrin hybrid device was governed by electrostatic gating and Schottky barrier modulation in combination. Further, the recorded electronic responses for all hybrid sensors were analyzed using a pattern-recognition analysis tool. The pattern-recognition analysis confirmed a definite pattern in response for different hybrid material and could efficiently differentiate analytes from one another. This discriminating capability of the hybrid nanosensor devices open up the possibilities for further development of highly dense nanosensor array with suitable porphyrin for E-nose application.
机译:单壁碳纳米管(SWNTs)由于其高的表面体积比,纳米尺寸的结构和令人感兴趣的电子特性而被广泛用于传感器制造。缺乏选择性是基于SWNT的传感器的主要限制。但是,使用合适的分子识别系统对单壁碳纳米管进行表面修饰可以提高灵敏度。另一方面,由于卟啉具有几种独特而有趣的理化性质,因此已广泛用作化学传感器制造的功能材料。游离碱和金属取代的卟啉之间的结构差异使它们适用于提高传感器的选择性。然而,它们差的导电性阻碍了基于卟啉的化学传感器的制造。目前的尝试是通过将游离碱金属卟啉和金属卟啉与SWNTs结合以制造SWNTs-卟啉混合化学电阻传感器阵列来监测空气中的挥发性有机碳(VOC)来解决这些问题。注意到具有不同官能团和具有不同中心金属原子的卟啉在传感性能上的差异。通过场效应晶体管(FET)测量进行了丙酮感测的机理研究,结果表明八乙基卟啉钌杂化器件的感应机理受静电门控作用控制,而四苯基卟啉铁杂化器件受静电门控和肖特基势垒控制。组合调制。此外,使用模式识别分析工具分析了所有混合传感器的记录电子响应。模式识别分析证实了对于不同杂化材料的确定模式,可以有效区分分析物。混合纳米传感器装置的这种区分能力为进一步开发具有适用于电子鼻应用的卟啉的高密度纳米传感器阵列提供了可能性。

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