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基于含氟共轭聚合物的印刷有机晶体管的高灵敏度柔性 NH 传感器。

Highly Sensitive Flexible NH Sensors Based on Printed Organic Transistors with Fluorinated Conjugated Polymers.

机构信息

Department of Science Education, Ewha Womans University , 52 Ewhayeodae-gil, Seodaemun-gu, Seoul 03760, Republic of Korea.

Department of Chemistry, Kunsan National University , 558 Daehak-ro, Gunsan, Jeonbuk 54150, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2017 Mar 1;9(8):7322-7330. doi: 10.1021/acsami.6b14220. Epub 2017 Feb 15.

Abstract

Understanding the sensing mechanism in organic chemical sensors is essential for improving the sensing performance such as detection limit, sensitivity, and other response/recovery time, selectivity, and reversibility for real applications. Here, we report a highly sensitive printed ammonia (NH) gas sensor based on organic thin film transistors (OTFTs) with fluorinated difluorobenzothiadiazole-dithienosilole polymer (PDFDT). These sensors detected NH down to 1 ppm with high sensitivity (up to 56%) using bar-coated ultrathin (<4 nm) PDFDT layers without using any receptor additives. The sensing mechanism was confirmed by cyclic voltammetry, hydrogen/fluorine nuclear magnetic resonance, and UV/visible absorption spectroscopy. PDFDT-NH interactions comprise hydrogen bonds and electrostatic interactions between the PDFDT polymer backbone and NH gas molecules, thus lowering the highest occupied molecular orbital levels, leading to hole trapping in the OTFT sensors. Additionally, density functional theory calculations show that gaseous NH molecules are captured via cooperation of fluorine atoms and dithienosilole units in PDFDT. We verified that incorporation of functional groups that interact with a specific gas molecule in a conjugated polymer is a promising strategy for producing high-performance printed OTFT gas sensors.

摘要

了解有机化学传感器中的传感机制对于提高传感性能(例如检测限、灵敏度以及其他响应/恢复时间、选择性和可逆性)至关重要,以满足实际应用的需求。在这里,我们报告了一种基于氟化二氟苯并噻二唑-二噻吩并噻吩聚合物(PDFDT)的有机薄膜晶体管(OTFT)的高灵敏度印刷氨(NH)气体传感器。这些传感器使用未经任何受体添加剂修饰的 bar-coated 超薄(<4nm)PDFDT 层,检测到低至 1ppm 的 NH 气体,具有高达 56%的高灵敏度。通过循环伏安法、氢/氟核磁共振和紫外/可见吸收光谱证实了传感机制。PDFDT-NH 相互作用包括 PDFDT 聚合物主链与 NH 气体分子之间的氢键和静电相互作用,从而降低最高占据分子轨道水平,导致 OTFT 传感器中的空穴捕获。此外,密度泛函理论计算表明,气态 NH 分子通过 PDFDT 中的氟原子和二噻吩并噻吩单元的合作被捕获。我们验证了在共轭聚合物中引入与特定气体分子相互作用的官能团是制造高性能印刷 OTFT 气体传感器的一种很有前途的策略。

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