Palla-Papavlu Alexandra, Vizireanu Sorin, Filipescu Mihaela, Lippert Thomas
Lasers Department, National Institute for Lasers, Plasma and Radiation Physics, Atomiștilor 409, 077125 Măgurele, Romania.
Laboratory of Inorganic Chemistry, Department of Chemistry and Applied Biosciences, ETH Zurich, 8093 Zurich, Switzerland.
Nanomaterials (Basel). 2022 Aug 17;12(16):2830. doi: 10.3390/nano12162830.
Ammonia sensors with high sensitivity, reproducible response, and low cost are of paramount importance for medicine, i.e., being a biomarker to diagnose lung and renal conditions, and agriculture, given that fertilizer application and livestock manure account for more than 80% of NH emissions. Thus, in this work, we report the fabrication of ultra-sensitive ammonia sensors by a rapid, efficient, and solvent-free laser-based procedure, i.e., laser-induced forward transfer (LIFT). LIFT has been used to transfer carbon nanowalls (CNWs) onto flexible polyimide substrates pre-patterned with metallic electrodes. The feasibility of LIFT is validated by the excellent performance of the laser-printed CNW-based sensors in detecting different concentrations of NH in the air, at room temperature. The sensors prepared by LIFT show reversible responses to ammonia when exposed to 20 ppm, whilst at higher NH concentrations, the responses are quasi-dosimetric. Furthermore, the laser-printed CNW-based sensors have a detection limit as low as 89 ppb and a response time below 10 min for a 20 ppm exposure. In addition, the laser-printed CNW-based sensors are very robust and can withstand more than 200 bending cycles without loss of performance. This work paves the way for the application and integration of laser-based techniques in device fabrication, overcoming the challenges associated with solvent-assisted chemical functionalization.
具有高灵敏度、可重现响应和低成本的氨传感器对于医学(即作为诊断肺部和肾脏疾病的生物标志物)以及农业至关重要,因为肥料施用和家畜粪便占氨排放的80%以上。因此,在这项工作中,我们报告了通过一种快速、高效且无溶剂的基于激光的方法,即激光诱导正向转移(LIFT)来制造超灵敏氨传感器。LIFT已被用于将碳纳米壁(CNWs)转移到预先用金属电极图案化的柔性聚酰亚胺基板上。通过基于激光打印的CNW传感器在室温下检测空气中不同浓度氨时的优异性能,验证了LIFT的可行性。通过LIFT制备的传感器在暴露于20 ppm氨时对氨表现出可逆响应,而在较高氨浓度下,响应为准剂量响应。此外,基于激光打印的CNW传感器的检测限低至89 ppb,对于20 ppm的暴露,响应时间低于10分钟。此外,基于激光打印的CNW传感器非常坚固,能够承受超过200次弯曲循环而不损失性能。这项工作为基于激光的技术在器件制造中的应用和集成铺平了道路,克服了与溶剂辅助化学功能化相关的挑战。