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使用锥形单模石英光纤直接测量溶解气体。

Direct Measurement of Dissolved Gas Using a Tapered Single-Mode Silica Fiber.

作者信息

Sun Panpan, Hu Mengpeng, Zhu Licai, Zhang Hui, Lv Jinguang, Liu Yu, Liang Jingqiu, Wang Qiang

机构信息

Key Laboratory of Advanced Manufacturing for Optical Systems (CAS), Changchun Institute of Optics, Fine Mechanics and Physics, Chinese Academy of Sciences, Changchun 130033, China.

University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Sensors (Basel). 2024 May 17;24(10):3200. doi: 10.3390/s24103200.

Abstract

Dissolved gases in the aquatic environment are critical to understanding the population of aquatic organisms and the ocean. Currently, laser absorption techniques based on membrane separation technology have made great strides in dissolved gas detection. However, the prolonged water-gas separation time of permeable membranes remains a key obstacle to the efficiency of dissolved gas analysis. To mitigate these limitations, we demonstrated direct measurement of dissolved gas using the evanescent-wave absorption spectroscopy of a tapered silica micro-fiber. It enhanced the analysis efficiency of dissolved gases without water-gas separation or sample preparation. The feasibility of this sensor for direct measurement of dissolved gases was verified by taking the detection of dissolved ammonia as an example. With a sensing length of 5 mm and a consumption of ~50 µL, this sensor achieves a system response time of ~11 min and a minimum detection limit (MDL) of 0.015%. Possible strategies are discussed for further performance improvement in in-situ applications requiring fast and highly sensitive dissolved gas sensing.

摘要

水生环境中的溶解气体对于了解水生生物种群和海洋状况至关重要。目前,基于膜分离技术的激光吸收技术在溶解气体检测方面取得了长足进展。然而,渗透膜长时间的水气分离时间仍然是溶解气体分析效率的关键障碍。为了缓解这些限制,我们展示了使用锥形二氧化硅微纤维的倏逝波吸收光谱法直接测量溶解气体。它无需水气分离或样品制备即可提高溶解气体的分析效率。以溶解氨的检测为例,验证了这种传感器直接测量溶解气体的可行性。该传感器传感长度为5毫米,消耗量约为50微升,系统响应时间约为11分钟,最低检测限为0.015%。对于在需要快速且高度灵敏的溶解气体传感的原位应用中进一步提高性能的可能策略进行了讨论。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4644/11125180/b8042bc973a3/sensors-24-03200-g001.jpg

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