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Stimuli-responsive materials and biomimetic fluidics: fundamental building blocks of chemical sensing platforms with futuristic capabilities

机译:刺激响应性材料和仿生流体技术:具有未来能力的化学传感平台的基本组成部分

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摘要

Since the initial breakthroughs in the 1960’s and 70’s that led to the development of the glucose biosensor, the oxygen electrode, ion-selective electrodes, and electrochemical/optochemical diagnostic devices, the vision of very reliable, affordable chemical sensors and bio-sensors capable of functioning autonomously for long periods of time (years) remains unrealized. This is despite massive investment in research and the publication of many thousands of papers in the literature. It is over 40 years since the first papers proposing the concept of the artificial pancreas, by combining glucose monitoring with an insulin pump. Yet even now, there is no chemical sensor/biosensor that can function reliably inside the body for more than a few days, and such is the gap in what can be delivered (days), and what is required (years) for implantable devices, it is not surprising that in health diagnostics, the overwhelmingly dominant paradigm for reliable measurements is still single use disposable sensors. Realising disruptive improvements in chem/bio-sensing platforms capable of long-term independent operation requires a step-back and rethinking of strategies, and considering solutions suggested by nature and materials science, rather than incremental improvements in existing approaches. \udThrough developments in 3D fabrication technologies in recent years, we can now build and characterize much more sophisticated 3D platforms than was previously possible. We can create regions of differing polarity and hydrophobicity, mix passive and binding behaviours, and regions of differing flexibility/rigidity, hardness/softness. In addition, we can integrate materials that can switch between these characteristics, enabling the creation of biomimetic microfluidic building blocks that exhibit switchable characteristics such as programmed microvehicle movement (chemotaxis), switchable binding and release, switchable soft polymer actuation (e.g. valving), and detection. These building blocks can be in turn integrated into microfluidic systems with hitherto unsurpassed functionalities that can contribute to bridging the gap between what is required for many applications, and what we can currently deliver. The emerging transition from existing engineering-inspired 2D to bioinspired 3D fluidic concepts represents a major turning point in the evolution of microfluidics. Implementation of these disruptive concepts may open the way to realise biochemical sensing systems with performance characteristics far beyond those of current devices. A key development will be the integration of biomimetic functions like self-diagnosis of condition and self-repair capabilities to extend their useful lifetime.\ud
机译:自1960年代和70年代最初的突破导致葡萄糖生物传感器,氧气电极,离子选择电极和电化学/光化学诊断设备的发展以来,人们就对非常可靠,价格适中的化学传感器和能够长时间(数年)内自主运行的功能尚未实现。尽管在研究上投入了大量资金,并且在文献中发表了数千篇论文,但仍需这样做。自第一篇论文提出了人造胰腺的概念以来已有40多年的历史了,该论文通过将葡萄糖监测与胰岛素泵相结合来提出。但即使到现在,还没有化学传感器/生物传感器能够在体内可靠地运行超过几天,这就是可交付的产品(天)和可植入设备所需的(年)之间的差距,不足为奇的是,在健康诊断中,可靠测量的绝对主要范例仍然是一次性使用的一次性传感器。实现能够长期独立运行的化学/生物传感平台的颠覆性改进,需要对策略进行退步和反思,并考虑自然和材料科学提出的解决方案,而不是对现有方法进行逐步改进。通过近几年3D制造技术的发展,我们现在可以构建和表征比以前更复杂的3D平台。我们可以创建极性和疏水性不同的区域,混合被动行为和绑定行为,以及柔韧性/刚度,硬度/柔软度不同的区域。此外,我们可以集成可以在这些特性之间切换的材料,从而能够创建仿生的微流体构建基块,这些构建基块具有可切换的特性,例如程序化的微车运动(趋化性),可切换的结合和释放,可切换的软聚合物驱动(例如,阀门)和检测。这些构建模块可以依次集成到具有迄今为止无与伦比的功能的微流体系统中,这些功能可以缩小许多应用程序所需要的功能与我们目前可以提供的功能之间的差距。从现有的工程启发式2D到生物启发性3D流体概念的新兴过渡代表了微流体技术发展的一个重大转折点。这些破坏性概念的实施可能为实现生化传感系统开辟道路,该生化传感系统的性能特征将远远超过当前设备。一个关键的发展将是仿生功能的集成,例如状况的自我诊断和自我修复功能,以延长其使用寿命。

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