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Electronic Transport Modulation in Ultrastrained Silicon Nanowire Devices.


ABSTRACT: In this work, we explore the effect of ultrahigh tensile strain on electrical transport properties of silicon. By integrating vapor-liquid-solid-grown nanowires into a micromechanical straining device, we demonstrate uniaxial tensile strain levels up to 9.5%. Thereby the triply degenerated phonon dispersion relation at the Γ-point of silicon disentangle and the longitudinal phonon modes are used to precisely determine the extent of mechanical strain. Simultaneous electrical transport measurements showed a significant enhancement in the electrical conductance. Aside from considerable reduction of the Si bulk resistivity due to strain-induced band gap narrowing, comparison with quasi-particle GW calculations further reveals that the effective Schottky barrier height at the electrical contacts undergoes a substantial reduction. For these reasons, nanowire devices with ultrastrained channels may be promising candidates for future applications of high-performance silicon-based devices.

SUBMITTER: Bartmann MG 

PROVIDER: S-EPMC11232017 | biostudies-literature | 2024 Jul

REPOSITORIES: biostudies-literature

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Electronic Transport Modulation in Ultrastrained Silicon Nanowire Devices.

Bartmann Maximilian G MG   Glassner Sebastian S   Sistani Masiar M   Rurali Riccardo R   Palummo Maurizia M   Cartoixà Xavier X   Smoliner Jürgen J   Lugstein Alois A  

ACS applied materials & interfaces 20240620 26


In this work, we explore the effect of ultrahigh tensile strain on electrical transport properties of silicon. By integrating vapor-liquid-solid-grown nanowires into a micromechanical straining device, we demonstrate uniaxial tensile strain levels up to 9.5%. Thereby the triply degenerated phonon dispersion relation at the Γ-point of silicon disentangle and the longitudinal phonon modes are used to precisely determine the extent of mechanical strain. Simultaneous electrical transport measurement  ...[more]

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