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Frontiers of More than Moore in Bioelectronics and the Required Metrology Needs

机译:超过生物电形的摩尔的边缘和所需的计量需求

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Silicon's intersection with biology is a premise inherent in Moore's prediction. Distinct from biologically inspired molecular logic and storage devices (more Moore) are the integration of solid state electronic devices with the soft condensed state of the body (more than Moore). Developments in biomolecular recognition events per sq. cm parallel those of Moore's Law. However, challenges continue in the area of "More than Moore". Two grand challenge problems must be addressed - the biocompatibility of synthetic materials with the myriad of tissue types within the human body and the interfacing of solid state micro- and nano-electronic devices with the electronics of biological systems. Electroconductive hydrogels have been developed as soft, condensed, biomimetic but otherwise inherently electronically conductive materials to address the challenge of interfacing solid state devices with the electronics of the body, which is predominantly ionic. Nano-templated interfaces via the oriented immobilization of single walled carbon nanotubes (SWCNTs) onto metallic electrodes have engendered reagentless, direct electron transfer between biological redox enzymes and solid state electrodes. In addressing these challenges, metrology needs and opportunities are found in such widely diverse areas as single molecule counting and addressing, sustainable power requirements such as the development of implantable biofuel cells for the deployment of implantable biochips, and new manufacturing paradigms to address plura-biology needs on solid state devices.
机译:硅的生物学交叉是摩尔预测中固有的前提。不同于生物启发的分子逻辑和储存装置(更多摩尔)是固态电子器件与体内柔和浓缩状态的整合(超过摩尔)。每平方米生物分子识别事件的发展。CM平行的摩尔定律。然而,挑战在“多于摩尔人的不仅仅是摩尔”的领域。必须解决两项大挑战问题 - 用人体内的组织类型的合成材料的生物相容性以及用生物系统的电子器件的固态微型和纳米电子器件的互相界面。导电水凝胶已被开发为柔软,浓缩的仿生物,但其他固有的电子导电材料,以解决与主体的电子器件接口固态装置的挑战,这主要是离子的。纳米模板连接的界面通过单壁碳纳米管(SWCNTS)的定向固定到金属电极上具有BINGINCED REAGENTLESS的直接电子转移和固态电极。在解决这些挑战的情况下,在这种广泛多样化的区域中发现了计量需求和机会,作为单一分子计数和解决,可持续的电力要求,例如植入生物燃料电池的开发,用于部署可植入的生物芯片,以及新的制造范例到地址Plura-Bioloology需要在固态设备上。

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