Reagentless chemiluminescence-based fiber optic sensors for regenerative life support in space

J. Atwater, J. R. Akse, Jeffrey DeHart, R. R. Wheeler
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引用次数: 1

Abstract

The initial feasibility demonstration of a reagentless chemiluminescence based fiber optic sensor technology for use in advanced regenerative life support applications in space and planetary outposts is described. The primary constraints for extraterrestrial deployment of any technology are compatibility with microgravity and hypogravity environments; minimal size, weight, and power consumption; and minimal use of expendables due to the great expense and difficulty inherent to resupply logistics. In the current research, we report the integration of solid state flow through modules for the production of aqueous phase reagents into an integrated system for the detection of important analytes by chemiluminescence, with fiber optic light transmission. By minimizing the need for resupply expendables, the use of solid phase modules makes complex chemical detection schemes practical. For the proof of concept, hydrogen peroxide and glucose were chosen as analytes. The reaction is catalyzed by glucose oxidase, an immobilized enzyme. The aqueous phase chemistry required for sensor operation is implemented using solid phase modules which adjust the pH of the influent stream, catalyze the oxidation of analyte, and provide the controlled addition of the luminophore to the flowing aqueous stream. Precise control of the pH has proven essential for the long-term sustained release of the luminophore. Electrocatalysis is achieved using a controlled potential across gold mesh and gold foil electrodes which undergo periodic polarity reversals. The development and initial characterization of performance of the reagentless fiber optic chemiluminescence sensors are presented in this paper.
用于空间再生生命维持的无试剂化学发光光纤传感器
描述了一种基于无试剂化学发光的光纤传感器技术用于空间和行星前哨的先进再生生命维持应用的初步可行性论证。在地球外部署任何技术的主要限制是与微重力和低重力环境的兼容性;最小的尺寸、重量和功耗;由于再补给后勤的巨大费用和困难,消耗品的使用最少。在目前的研究中,我们报告了将用于生产水相试剂的固态流动模块集成到一个集成系统中,用于通过光纤光传输化学发光检测重要分析物。通过最大限度地减少对补给消耗品的需求,使用固相模块使复杂的化学检测方案变得可行。为了验证概念,选择过氧化氢和葡萄糖作为分析物。该反应由葡萄糖氧化酶催化,葡萄糖氧化酶是一种固定化酶。传感器操作所需的水相化学是使用固相模块实现的,固相模块调节进水流的pH值,催化分析物的氧化,并向流动的水流提供受控的发光团添加。精确控制pH值已被证明对发光团的长期持续释放至关重要。电催化是通过控制电位通过金网和金箔电极进行周期性极性反转实现的。本文介绍了无试剂光纤化学发光传感器的发展和性能的初步表征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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