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Fast flexible electronics with strained silicon nanomembranes.


ABSTRACT: Fast flexible electronics operating at radio frequencies (>1 GHz) are more attractive than traditional flexible electronics because of their versatile capabilities, dramatic power savings when operating at reduced speed and broader spectrum of applications. Transferrable single-crystalline Si nanomembranes (SiNMs) are preferred to other materials for flexible electronics owing to their unique advantages. Further improvement of Si-based device speed implies significant technical and economic advantages. While the mobility of bulk Si can be enhanced using strain techniques, implementing these techniques into transferrable single-crystalline SiNMs has been challenging and not demonstrated. The past approach presents severe challenges to achieve effective doping and desired material topology. Here we demonstrate the combination of strained- NM-compatible doping techniques with self-sustained-strain sharing by applying a strain-sharing scheme between Si and SiGe multiple epitaxial layers, to create strained print-transferrable SiNMs. We demonstrate a new speed record of Si-based flexible electronics without using aggressively scaled critical device dimensions.

SUBMITTER: Zhou H 

PROVIDER: S-EPMC3575016 | biostudies-literature | 2013

REPOSITORIES: biostudies-literature

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Fast flexible electronics with strained silicon nanomembranes.

Zhou Han H   Seo Jung-Hun JH   Paskiewicz Deborah M DM   Zhu Ye Y   Celler George K GK   Voyles Paul M PM   Zhou Weidong W   Lagally Max G MG   Ma Zhenqiang Z  

Scientific reports 20130101


Fast flexible electronics operating at radio frequencies (>1 GHz) are more attractive than traditional flexible electronics because of their versatile capabilities, dramatic power savings when operating at reduced speed and broader spectrum of applications. Transferrable single-crystalline Si nanomembranes (SiNMs) are preferred to other materials for flexible electronics owing to their unique advantages. Further improvement of Si-based device speed implies significant technical and economic adva  ...[more]

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