Center for Electronic Materials, Korea Institute of Science and Technology (KIST) , Seoul 136-791, Republic of Korea.
Department of Material Science and Engineering, Yonsei University , Seoul 120-749, Republic of Korea.
ACS Appl Mater Interfaces. 2016 Aug 17;8(32):20969-76. doi: 10.1021/acsami.6b03256. Epub 2016 Aug 5.
Detection of gas-phase chemicals finds a wide variety of applications, including food and beverages, fragrances, environmental monitoring, chemical and biochemical processing, medical diagnostics, and transportation. One approach for these tasks is to use arrays of highly sensitive and selective sensors as an electronic nose. Here, we present a high performance chemiresistive electronic nose (CEN) based on an array of metal oxide thin films, metal-catalyzed thin films, and nanostructured thin films. The gas sensing properties of the CEN show enhanced sensitive detection of H2S, NH3, and NO in an 80% relative humidity (RH) atmosphere similar to the composition of exhaled breath. The detection limits of the sensor elements we fabricated are in the following ranges: 534 ppt to 2.87 ppb for H2S, 4.45 to 42.29 ppb for NH3, and 206 ppt to 2.06 ppb for NO. The enhanced sensitivity is attributed to the spillover effect by Au nanoparticles and the high porosity of villi-like nanostructures, providing a large surface-to-volume ratio. The remarkable selectivity based on the collection of sensor responses manifests itself in the principal component analysis (PCA). The excellent sensing performance indicates that the CEN can detect the biomarkers of H2S, NH3, and NO in exhaled breath and even distinguish them clearly in the PCA. Our results show high potential of the CEN as an inexpensive and noninvasive diagnostic tool for halitosis, kidney disorder, and asthma.
气相化学物质的检测有多种应用,包括食品和饮料、香料、环境监测、化学和生化处理、医疗诊断和运输。其中一种方法是使用高度灵敏和选择性的传感器阵列作为电子鼻。在这里,我们提出了一种基于金属氧化物薄膜、金属催化薄膜和纳米结构薄膜阵列的高性能电阻式电子鼻(CEN)。CEN 的气体传感性能对 H2S、NH3 和 NO 的敏感检测得到了增强,在相对湿度(RH)为 80%的环境中,这与呼气的组成相似。我们制造的传感器元件的检测极限在以下范围内:H2S 为 534 ppt 至 2.87 ppb,NH3 为 4.45 至 42.29 ppb,NO 为 206 ppt 至 2.06 ppb。灵敏度的增强归因于 Au 纳米粒子的溢出效应和绒毛状纳米结构的高孔隙率,提供了大的表面积与体积比。基于传感器响应的收集的显著选择性体现在主成分分析(PCA)中。优异的传感性能表明,CEN 可以检测呼气中的 H2S、NH3 和 NO 的生物标志物,甚至可以在 PCA 中清楚地区分它们。我们的结果表明,CEN 作为一种廉价且非侵入性的口臭、肾脏疾病和哮喘诊断工具具有很高的潜力。