Krcmar Petr, Kuritka Ivo, Maslik Jan, Urbanek Pavel, Bazant Pavel, Machovsky Michal, Suly Pavol, Merka Petr
Centre of Polymer Systems, University Institute, Tomas Bata University in Zlin, trida Tomase Bati 5678, 760 01 Zlin, Czech Republic.
Sensors (Basel). 2019 Jul 11;19(14):3068. doi: 10.3390/s19143068.
This work focuses on an inkjet-fabricated sensor based on copper oxide nanostructured particles on polymer flexible substrate for the sensing of alcohol vapours and humidity at room temperature. Nanoparticles were prepared by a microwave-assisted solvothermal sealed vessel synthesis method. The ink composition was developed on the basis of viscosity and surface tension optimization by the addition of polymeric steric surfactant and dispersant. The printing process was optimized with the help of non-dimensional criteria. Silver nanoink was used for the printing of an interdigitated pattern on a PET substrate which was overprinted by the copper oxide ink, thus obtaining a flexible flat sensor. Material design and all fabrication steps of the sensor respected the temperature limitation given by the thermal stability of the polymer substrate. Printed layers and motifs were characterized microscopically and by resistance measurement. The effectiveness of the prepared sensor was demonstrated and studied by measuring the response to saturated vapours at room temperature. The sensing layer showed the opposite resistance response to stimuli than expected for the well-known p-type sensing mechanism of CuO sensors operated at high temperatures. In addition to vapour sorption, condensation and desorption influencing electron, proton and ionic conductivity, manifestation of another mechanism was observed and an explanation suggested in terms of the electrochemical mechanism.
这项工作聚焦于一种基于聚合物柔性基板上的氧化铜纳米结构颗粒的喷墨制造传感器,用于在室温下检测酒精蒸汽和湿度。纳米颗粒通过微波辅助溶剂热密封容器合成法制备。通过添加聚合物空间位阻表面活性剂和分散剂,基于粘度和表面张力优化来开发墨水组合物。借助无量纲标准对印刷工艺进行了优化。银纳米墨水用于在PET基板上印刷叉指图案,该图案再由氧化铜墨水套印,从而获得一个柔性平面传感器。传感器的材料设计和所有制造步骤都考虑到了聚合物基板热稳定性所给出的温度限制。通过显微镜和电阻测量对印刷层和图案进行了表征。通过测量在室温下对饱和蒸汽的响应,证明并研究了所制备传感器的有效性。传感层对刺激的电阻响应与在高温下运行的CuO传感器的著名p型传感机制所预期的相反。除了蒸汽吸附、凝结和解吸影响电子、质子和离子传导率外,还观察到了另一种机制的表现,并从电化学机制方面提出了解释。