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A comprehensive study and validation of high-throughput microscale electrode production using thermal transfer printing techniques

机译:使用热转移印刷技术对高通量微米级电极生产进行全面研究和验证

摘要

Adoption of Lab-on-Chip technology, which combines microfluidics with laboratory processes, is steadily increasing within the global health diagnostics field. An important element of this technology is the sensing and measurement capabilities of associated microelectronics. This thesis presents a critical analysis of the use of thermal transfer printing techniques for the manufacture of microscale electrical conductors used for biochemical assays- in this instance, cell lysate spectroscopy. This process affords advantages over traditional techniques such as chemical vapor deposition because of its compatibility with a variety of materials and ability to produce durable electrodes that can perform in the harsh environments that characterize many targeted areas where adequate access to laboratory diagnostic equipment is severely limited. Commercialization of the process to meet global demand is contingent upon the development of this process at its more rudimentary stages. This study attempts to validate the exponential scaling of this process, including qualification of manufacturing setup, optimization of operational parameters, and detailed analysis of full production runs. The maximization of sensitivity while simultaneously minimizing variation in electrode production presented the primary challenges of this work. It is concluded that a careful balance of process parameters can produce high quality, identical electrodes consistently at the thousands-level production throughput. A variation of only 2.2% in electrode sensitivity revealed that with the determined optimal process settings and in-line quality control, the success even further production scaling to better meet market demand is feasible.
机译:在全球健康诊断领域中,将微流体与实验室过程相结合的片上实验室技术的采用正在稳步增长。这项技术的重要元素是相关微电子的传感和测量功能。本文对使用热转移印刷技术制造用于生化测定的微型电导体(在这种情况下为细胞裂解物光谱学)进行了严格的分析。该方法与传统技术(例如化学气相沉积)相比具有优势,因为它与多种材料兼容,并且能够生产出耐用的电极,这些电极可以在恶劣的环境中运行,这些环境严重限制了对目标区域的充分使用,而这些区域严重限制了对实验室诊断设备的访问。满足全球需求的过程的商业化取决于该过程处于更初级的阶段。这项研究试图验证该过程的指数级扩展,包括制造设置的鉴定,操作参数的优化以及完整生产运行的详细分析。灵敏度的最大化同时电极生产中的差异最小化是这项工作的主要挑战。结论是,仔细地平衡工艺参数可以以数千个水平的生产量一致地生产高质量,相同的电极。电极灵敏度只有2.2%的变化表明,通过确定的最佳工艺设置和在线质量控制,成功实现甚至进一步的生产规模以更好地满足市场需求也是可行的。

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