Dissolved oxygen sensing using organometallic dyes deposited within a microfluidic environment

SPIE MOEMS-MEMS Pub Date : 2008-02-07 DOI:10.1117/12.762666
Q. L. Chen, H. Ho, L. Jin, B. W. Chu, M. Li, V. Yam
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Abstract

This work primarily aims to integrate dissolved oxygen sensing capability with a microfluidic platform containing arrays of micro bio-reactors or bio-activity indicators. The measurement of oxygen concentration is of significance for a variety of bio-related applications such as cell culture and gene expression. Optical oxygen sensors based on luminescence quenching are gaining much interest in light of their low power consumption, quick response and high analyte sensitivity in comparison to similar oxygen sensing devices. In our microfluidic oxygen sensor device, a thin layer of oxygen-sensitive luminescent organometallic dye is covalently bonded to a glass slide. Micro flow channels are formed on the glass slide using patterned PDMS (Polydimethylsiloxane). Dissolved oxygen sensing is then performed by directing an optical excitation probe beam to the area of interest within the microfluidic channel. The covalent bonding approach for sensor layer formation offers many distinct advantages over the physical entrapment method including minimizing dye leaching, ensuring good stability and fabrication simplicity. Experimental results confirm the feasibility of the device.
使用沉积在微流体环境中的有机金属染料的溶解氧传感
这项工作的主要目的是将溶解氧传感能力与包含微生物反应器阵列或生物活性指标的微流控平台相结合。氧浓度的测量对于细胞培养和基因表达等多种生物相关应用具有重要意义。与同类氧传感装置相比,基于发光猝灭的光学氧传感器以其低功耗、快速响应和高分析物灵敏度而备受关注。在我们的微流控氧传感器装置中,一层薄薄的氧敏发光有机金属染料被共价键合在玻璃载玻片上。在玻片上使用PDMS(聚二甲基硅氧烷)形成微流道。然后通过将光学激发探针束定向到微流体通道内感兴趣的区域来进行溶解氧传感。用于传感器层形成的共价键方法与物理包埋方法相比具有许多明显的优点,包括最大限度地减少染料浸出,确保良好的稳定性和制造简单。实验结果证实了该装置的可行性。
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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