Ohira Shin-Ichi, Nakamura Nao, Endo Masaaki, Miki Yusuke, Hirose Yasuo, Toda Kei
Department of Chemistry, Kumamoto University.
Tsukuba Laboratories, Taiyo Nippon Sanso Corporation.
Anal Sci. 2018;34(4):495-500. doi: 10.2116/analsci.17P453.
Monitoring of trace water in industrial gases is strongly recommended because contaminants cause serious problems during use, especially in the semiconductor industry. An ultra-sensitive trace-water sensor was developed with an in situ-synthesized metal-organic framework as the sensing material. The sample gas is passed through the sensing membrane and efficiently and rapidly collected by the sensing material in the newly designed gas collection/detection cell. The sensing membrane, glass paper impregnated with copper 1,3,5-benzenetricarboxylate (Cu-BTC), is also newly developed. The amount and density of the sensing material in the sensing membrane must be well balanced to achieve rapid and sensitive responses. In the present study, Cu-BTC was synthesized in situ in glass paper. The developed system gave high sensing performances with a limit of detection (signal/noise ratio = 3) of 9 parts per billion by volume (ppbv) HO and a 90% response time of 86 s for 200 ppbv HO. The reproducibility of the responses within and between lots had relative standard deviations for 500 ppbv HO of 0.8% (n = 10) and 1.5% (n = 3), respectively. The long-term (2 weeks) stability was 7.3% for 400 ppbv HO and one-year continuous monitoring test showed the sensitivity change of <∼3% before and after the study. Furthermore, the system response was in good agreement with the response achieved in cavity ring-down spectroscopy. These performances are sufficient for monitoring trace water in industrial gases. The integrated system with light and gas transparent structure for gas collection/absorbance detection can also be used for other target gases, using specific metal-organic frameworks.
强烈建议对工业气体中的痕量水进行监测,因为污染物在使用过程中会引发严重问题,尤其是在半导体行业。开发了一种超灵敏痕量水传感器,以原位合成的金属有机框架作为传感材料。样气通过传感膜,并在新设计的气体收集/检测池中被传感材料高效快速地收集。传感膜是新开发的,由浸渍有1,3,5-苯三甲酸铜(Cu-BTC)的玻璃纸制成。传感膜中传感材料的量和密度必须达到良好平衡,以实现快速且灵敏的响应。在本研究中,Cu-BTC在玻璃纸中原位合成。所开发的系统具有高传感性能,检测限(信噪比 = 3)为9体积十亿分之一(ppbv)的H₂O,对于200 ppbv的H₂O,90%响应时间为86秒。批次内和批次间响应的重现性对于500 ppbv的H₂O,相对标准偏差分别为0.8%(n = 10)和1.5%(n = 3)。对于400 ppbv的H₂O,长期(2周)稳定性为7.3%,一年的连续监测测试表明研究前后灵敏度变化< ∼3%。此外,该系统的响应与腔衰荡光谱法获得的响应高度一致。这些性能足以用于监测工业气体中的痕量水。具有光和气体透明结构用于气体收集/吸光度检测的集成系统,使用特定的金属有机框架,也可用于其他目标气体。