Panes-Ruiz Luis Antonio, Riemenschneider Leif, Al Chawa Mohamad Moner, Löffler Markus, Rellinghaus Bernd, Tetzlaff Ronald, Bezugly Viktor, Ibarlucea Bergoi, Cuniberti Gianaurelio
Institute for Materials Science, Max Bergmann Center of Biomaterials, Technische Universität Dresden, Dresden, 01062 Germany.
Institute of Circuits and Systems, Technische Universität Dresden, Dresden, 01062 Germany.
Nano Res. 2022;15(3):2512-2521. doi: 10.1007/s12274-021-3771-7. Epub 2021 Sep 2.
We demonstrate the selective detection of hydrogen sulfide at breath concentration levels under humid airflow, using a self-validating 64-channel sensor array based on semiconducting single-walled carbon nanotubes (sc-SWCNTs). The reproducible sensor fabrication process is based on a multiplexed and controlled dielectrophoretic deposition of sc-SWCNTs. The sensing area is functionalized with gold nanoparticles to address the detection at room temperature by exploiting the affinity between gold and sulfur atoms of the gas. Sensing devices functionalized with an optimized distribution of nanoparticles show a sensitivity of 0.122%/part per billion (ppb) and a calculated limit of detection (LOD) of 3 ppb. Beyond the self-validation, our sensors show increased stability and higher response levels compared to some commercially available electrochemical sensors. The cross-sensitivity to breath gases NH and NO is addressed demonstrating the high selectivity to HS. Finally, mathematical models of sensors' electrical characteristics and sensing responses are developed to enhance the differentiation capabilities of the platform to be used in breath analysis applications.
Supplementary material (details on the dielectrophoretic deposition, AuNP functionalization optimization, full range of experimental and model HS sensing response up to 820 ppb, and sensing response to NO gas) is available in the online version of this article at 10.1007/s12274-021-3771-7.
我们展示了基于半导体单壁碳纳米管(sc-SWCNTs)的自验证64通道传感器阵列在潮湿气流下对呼吸浓度水平的硫化氢进行选择性检测。可重复的传感器制造工艺基于sc-SWCNTs的多路复用和受控介电泳沉积。传感区域用金纳米颗粒进行功能化,以利用金与气体中硫原子之间的亲和力在室温下进行检测。用优化的纳米颗粒分布功能化的传感装置显示出0.122%/十亿分之一(ppb)的灵敏度和3 ppb的计算检测限(LOD)。除了自验证之外,与一些市售的电化学传感器相比,我们的传感器显示出更高的稳定性和更高的响应水平。解决了对呼吸气体NH和NO的交叉敏感性,证明了对HS的高选择性。最后,开发了传感器电特性和传感响应的数学模型,以增强该平台在呼吸分析应用中的区分能力。
补充材料(关于介电泳沉积、金纳米颗粒功能化优化、高达820 ppb的完整实验和模型HS传感响应以及对NO气体的传感响应的详细信息)可在本文的在线版本中获取,链接为10.1007/s12274-021-3771-7。