Chen Winston Yenyu, Yermembetova Aiganym, Washer Benjamin M, Jiang Xiaofan, Shuvo Shoumya Nandy, Peroulis Dimitrios, Wei Alexander, Stanciu Lia A
School of Materials Engineering, Purdue University, West Lafayette, Indiana 47907, United States.
Birck Nanotechnology Center, Purdue University, West Lafayette, Indiana 47907, United States.
ACS Sens. 2020 Jun 26;5(6):1699-1706. doi: 10.1021/acssensors.0c00344. Epub 2020 Jun 11.
The plant hormone ethylene (C2) can induce premature fruit ripening and flower senescence at levels below 1 ppm, which has motivated efforts to develop cost-effective methods for C2 monitoring during the transport and storage of climacteric fruits. Here, we describe a nanocomposite film composed of exfoliated MoS, single-walled carbon nanotubes (SCNTs), and Cu(I)-tris(mercaptoimidazolyl)borate complexes (Cu-Tm) for real-time detection of C2 at levels down to 100 ppb. A copercolation network of MoS and SCNTs was deposited onto interdigitated Ag electrodes printed on plastic substrates and then coated with Cu-Tm with a final conductance in the 0.5 mS range. Reversible changes in relative conductance (-Δ/) were measured upon C2 exposure with a linear response at sub-ppm levels. The thin-film sensors were highly selective toward C2, and they responded weakly to other volatile organic compounds or water at similar partial pressures. A mechanism is proposed in which Cu-Tm behaves as a chemically sensitive -type dopant for MoS, based on spectroscopic characterization and density functional theory modeling. Cu-Tm-coated MoS/SCNT sensors were also connected to a battery-powered wireless transmitter and used to monitor C2 production from various fruit samples, validating their utility as practical, field-deployable sensors.
植物激素乙烯(C₂)在浓度低于1 ppm时就能诱导果实过早成熟和花朵衰老,这促使人们努力开发经济高效的方法,用于在跃变型果实的运输和储存过程中监测C₂。在此,我们描述了一种由剥离的MoS、单壁碳纳米管(SCNT)和Cu(I)-三(巯基咪唑基)硼酸盐配合物(Cu-Tm)组成的纳米复合薄膜,用于实时检测低至100 ppb的C₂。MoS和SCNT的共渗流网络沉积在印刷在塑料基板上的叉指式银电极上,然后用Cu-Tm进行涂覆,最终电导在0.5 mS范围内。在暴露于C₂时测量相对电导的可逆变化(-Δ/),在亚ppm水平下具有线性响应。该薄膜传感器对C₂具有高度选择性,对其他挥发性有机化合物或类似分压下的水反应较弱。基于光谱表征和密度泛函理论建模,提出了一种机制,其中Cu-Tm作为MoS的化学敏感型掺杂剂。涂有Cu-Tm的MoS/SCNT传感器还连接到电池供电的无线发射器,并用于监测各种水果样品产生的C₂,验证了它们作为实用的、可现场部署的传感器的实用性。