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Physics-based compact models for insulated-gate field-effect biosensors, landau-transistors, and thin-film solar cells

机译:基于物理的紧凑模型,用于绝缘栅场效应生物传感器,兰道晶体管和薄膜太阳能电池

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摘要

As the future of Moore's law appear uncertain, semiconductor electronics is being reinvented with a broader focus on energy efficient 3D computing, flexible electronics, biosensors, energy harvesting, etc. These devices are gradually being integrated onto the CMOS fabric as `More-than-Moore' components, with transformative impact on consumer electronics. Unfortunately, a lack of physics-based, experimentally validated, numerically stable, well-documented compact models makes integration of these components in a CMOS design flow difficult. In this paper, we describe physics-based compact models for three very different components that are likely to be integrated in future systems, namely, FET-based nanobiosensors for pH sensing, Landau-transistors for low-power electronics, and thin-film solar cells for energy harvesting. Our physics-based approach should inspire the community to develop similar models for other emerging devices, so as to make their integration onto CMOS platform a routine affair.
机译:由于摩尔定律的未来似乎不确定,半导体电子技术正在被重新发明,重点是节能3D计算,柔性电子技术,生物传感器,能量收集等。这些设备正以“多于”的方式逐渐集成到CMOS架构中。摩尔的组件,对消费类电子产品产生了革命性的影响。不幸的是,由于缺乏基于物理学的,经过实验验证的,数值稳定的,有据可查的紧凑模型,使得将这些组件集成到CMOS设计流程中变得很困难。在本文中,我们描述了可能在未来系统中集成的三个非常不同的组件的基于物理的紧凑模型,即,用于pH传感的基于FET的纳米生物传感器,用于低功率电子设备的Landau晶体管以及薄膜太阳能收集能量的细胞。我们基于物理的方法应激励社区为其他新兴设备开发相似的模型,以使它们与CMOS平台的集成成为例行事务。

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