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Source-gated transistors for order-of-magnitude performance improvements in thin-film digital circuits

机译:源极门控晶体管可改善薄膜数字电路的数量级性能

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摘要

Ultra-large-scale integrated (ULSI) circuits have benefited from successive refinements in device architecture for enormous improvements in speed, power efficiency and areal density. In large-area electronics (LAE), however, the basic building-block, the thin-film field-effect transistor (TFT) has largely remained static. Now, a device concept with fundamentally different operation, the source-gated transistor (SGT) opens the possibility of unprecedented functionality in future low-cost LAE. With its simple structure and operational characteristics of low saturation voltage, stability under electrical stress and large intrinsic gain, the SGT is ideally suited for LAE analog applications. Here, we show using measurements on polysilicon devices that these characteristics lead to substantial improvements in gain, noise margin, power-delay product and overall circuit robustness in digital SGT-based designs. These findings have far-reaching consequences, as LAE will form the technological basis for a variety of future developments in the biomedical, civil engineering, remote sensing, artificial skin areas, as well as wearable and ubiquitous computing, or lightweight applications for space exploration.
机译:超大规模集成(ULSI)电路得益于器件架构的不断改进,极大地提高了速度,功率效率和面密度。但是,在大面积电子设备(LAE)的基本构件中,薄膜场效应晶体管(TFT)基本上保持静态。现在,源于栅极的晶体管(SGT)是一种具有根本不同的工作原理的器件,它为未来的低成本LAE提供了前所未有的功能。 SGT具有简单的结构和低饱和电压的工作特性,在电应力下的稳定性以及较大的固有增益,因此非常适合LAE模拟应用。在这里,我们展示了在多晶硅器件上的测量结果表明,这些特性可以在基于数字SGT的设计中显着改善增益,噪声容限,功率延迟乘积和整体电路的稳健性。这些发现具有深远的影响,因为LAE将为生物医学,土木工程,遥感,人造皮肤领域以及可穿戴和无处不在的计算或轻型太空探索应用的各种未来发展提供技术基础。

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