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Challenges facing academic research in commercializing event-detector implantable devices for an in-vivo biomedical subcutaneous device for biomedical analysis

机译:在将用于生物医学分析的体内生物医学皮下器械的事件检测器可植入设备商业化方面学术研究面临的挑战

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It is widely recognized that the welfare of the most advanced economies is at risk, and that the only way to tackle this situation is by controlling the knowledge economies and dealing with. To achieve this ambitious goal, we need to improve the performance of each dimension in the "knowledge triangle": education, research and innovation. Indeed, recent findings point to the importance of strategies of adding-value and marketing during R+D processes so as to bridge the gap between the laboratory and the market and so ensure the successful commercialization of new technology-based products. Moreover, in a global economy in which conventional manufacturing is dominated by developing economies, the future of industry in the most advanced economies must rely on its ability to innovate in those high-tech activities that can offer a differential added-value, rather than on improving existing technologies and products. It seems quite clear, therefore, that the combination of health (medicine) and nanotechnology in a new biomedical device is very capable of meeting these requisites. This work propose a generic CMOS Front-End Self-Powered In-Vivo Implantable Biomedical Device, based on a threeelectrode amperometric biosensor approach, capable of detecting threshold values for targeted concentrations of pathogens, ions, oxygen concentration, etc. Given the speed with which diabetes can spread, as diabetes is the fastest growing disease in the world, the nano-enabled implantable device for in-vivo biomedical analysis needs to be introduced into the global diabetes care devices market. In the case of glucose monitoring, the detection of a threshold decrease in the glucose level it is mandatory to avoid critic situations like the hypoglycemia. Although the case study reported in this paper is complex because it involves multiple organizations and sources of data, it contributes to extend experience to the best practices and models on nanotechnology applications and commercialization.
机译:众所周知,最先进经济体的福利受到威胁,解决这种情况的唯一方法是控制知识经济并加以应对。为了实现这一宏伟目标,我们需要提高“知识三角”中每个维度的绩效:教育,研究和创新。确实,最近的发现表明,在研发过程中增加价值和营销策略的重要性,以弥合实验室与市场之间的鸿沟,从而确保新技术产品的成功商业化。此外,在传统制造业由发展中经济体主导的全球经济中,最先进经济体中工业的未来必须依靠其创新能力来进行那些能够提供不同增值的高科技活动,而不是依靠改善现有技术和产品。因此,很显然,将健康(医学)和纳米技术相结合的新生物医学设备非常有能力满足这些要求。这项工作提出了一种基于三电极安培生物传感器方法的通用CMOS前端自供电活体内生物医学设备,能够检测病原体,离子,氧气等目标浓度的阈值。由于糖尿病是世界上增长最快的疾病,因此糖尿病可能会扩散,因此需要将纳米技术用于体内生物医学分析的植入式设备引入全球糖尿病护理设备市场。在进行葡萄糖监测的情况下,必须检测到葡萄糖水平的阈值降低,以避免出现血糖过低等不良情况。尽管本文报告的案例研究很复杂,因为它涉及多个组织和数据源,但它有助于将经验扩展到有关纳米技术应用和商业化的最佳实践和模型。

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