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首页> 外文期刊>Angewandte Chemie >Directional Charge Transport in Layered Two-Dimensional Triazine-Based Graphitic Carbon Nitride
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Directional Charge Transport in Layered Two-Dimensional Triazine-Based Graphitic Carbon Nitride

机译:分层二维三嗪基石墨氮化物中的定向电荷输送

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摘要

Triazine-based graphitic carbon nitride (TGCN) is the most recent addition to the family of graphene-type, two-dimensional, and metal-free materials. Although hailed as a promising low-band-gap semiconductor for electronic applications, so far, only its structure and optical properties have been known. Here, we combine direction-dependent electrical measurements and time-resolved optical spectroscopy to determine the macroscopic conductivity and microscopic charge-carrier mobilities in this layered material beyond graphene. Electrical conductivity along the basal plane of TGCN is 65 times lower than through the stacked layers, as opposed to graphite. Furthermore, we develop a model for this charge-transport behavior based on observed carrier dynamics and random-walk simulations. Our combined methods provide a path towards intrinsic charge transport in a direction-dependent layered semiconductor for applications in field-effect transistors (FETs) and sensors.
机译:基于三嗪的石墨碳氮化物(TGCN)是石墨烯型,二维和无金属材料家族的最新产物。 虽然作为电子应用的有希望的低带隙半导体,但仅仅已知其结构和光学性质。 这里,我们将方向依赖的电测量和时间分辨光学光谱相结合,以确定超越石墨烯的层状材料中的宏观电导率和微观电荷 - 载体迁移率。 与石墨相反,沿着TGCN的基底平面的电导率比通过堆叠层低65倍。 此外,我们基于观察到的载波动态和随机步行仿真,开发了这种充电行为的模型。 我们的组合方法提供了用于在场效应晶体管(FET)和传感器的方向上的分层半导体中的固有电荷传输的路径。

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