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Tuning the electronic properties of germanene by molecular adsorption and under an external electric field

机译:通过分子吸附和外部电场调整锗的电子特性

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摘要

The effects of both molecular adsorption and external electric field on the electronic properties of germanene are investigated through first-principles calculations in this work. The molecular adsorption-induced intrinsic electric field by small molecules (SMs) breaks the symmetry of two sublattices in germanene, leading to a band gap opening from zero to 3.2 meV, even up to 81.0 meV. Under an external electric field, a wide ranging linearly tunable band gap (0-69.39 meV for the germanene/methane system and 37.66-134.17 meV for the germanene/ammonia system) can be realized, which is merely determined by the strength of the composited electric field independent of its direction. More importantly, the band gap of germanene/SMs can be closed and reopened under a critical electric field. On the other hand, the mechanism of charge transfer between germanene and SMs under an external electric field is revealed by an equivalent capacitor model to explain the tunable charge transfer. The composited field-induced charge transfer could be promoted when an external electric field and a molecular adsorption-induced internal electric field have the same direction. Otherwise, the charge transfer will be inhibited. Particularly, the tunable electronic properties of germanene are sensitive to the concentration of molecular adsorption under an electric field, representing multiple-effects that would significantly enhance the performance of germanene for electronic devices in the future.
机译:通过第一原理计算研究了分子吸附和外部电场对锗的电子性质的影响。小分子(SMS)的分子吸附诱导的内在电场(SMS)在锗中的两个子晶片的对称性中断,导致带隙从零到3.2meV开口,甚至高达81.0 meV。在外部电场下,可以实现广泛的线性可调带隙(锗/甲烷系统的0-69.39 mev,锗/氨系统的37.66-134.17mev)仅是由合成的强度决定的电场独立于其方向。更重要的是,锗/短信的带隙可以在临界电场下关闭并重新开放。另一方面,通过等效电容器模型揭示了锗烯和SMS之间的电荷转移机制,以解释可调谐电荷转移。当外部电场和分子吸附诱导的内部电场具有相同方向时,可以促进组合的场诱导的电荷转移。否则,将抑制电荷转移。特别是,锗的可调谐电子性质对电场下的分子吸附浓度敏感,代表了多种效应,这将在未来显着提高锗Enere的性能。

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    Jiangxi Normal Univ Coll Phys &

    Commun Elect Lab Computat Mat Phys Nanchang 330022 Jiangxi Peoples R China;

    Jiangxi Normal Univ Coll Phys &

    Commun Elect Lab Computat Mat Phys Nanchang 330022 Jiangxi Peoples R China;

    Jiangxi Normal Univ Coll Phys &

    Commun Elect Lab Computat Mat Phys Nanchang 330022 Jiangxi Peoples R China;

    Jiangxi Normal Univ Coll Phys &

    Commun Elect Lab Computat Mat Phys Nanchang 330022 Jiangxi Peoples R China;

    Jiangxi Normal Univ Coll Phys &

    Commun Elect Lab Computat Mat Phys Nanchang 330022 Jiangxi Peoples R China;

    Jiangxi Normal Univ Coll Phys &

    Commun Elect Lab Computat Mat Phys Nanchang 330022 Jiangxi Peoples R China;

    Beijing Univ Technol Inst Laser Engn Strong Field &

    Ultrafast Photon Lab Beijing 100124 Peoples R China;

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  • 正文语种 eng
  • 中图分类 物理化学(理论化学)、化学物理学;
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