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Light-emitting diodes by band-structure engineering in van der Waals heterostructures.

机译:范德华异质结构中的能带结构工程制造的发光二极管。

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摘要

The advent of graphene and related 2D materials has recently led to a new technology: heterostructures based on these atomically thin crystals. The paradigm proved itself extremely versatile and led to rapid demonstration of tunnelling diodes with negative differential resistance, tunnelling transistors, photovoltaic devices and so on. Here, we take the complexity and functionality of such van der Waals heterostructures to the next level by introducing quantum wells (QWs) engineered with one atomic plane precision. We describe light-emitting diodes (LEDs) made by stacking metallic graphene, insulating hexagonal boron nitride and various semiconducting monolayers into complex but carefully designed sequences. Our first devices already exhibit an extrinsic quantum efficiency of nearly 10% and the emission can be tuned over a wide range of frequencies by appropriately choosing and combining 2D semiconductors (monolayers of transition metal dichalcogenides). By preparing the heterostructures on elastic and transparent substrates, we show that they can also provide the basis for flexible and semi-transparent electronics. The range of functionalities for the demonstrated heterostructures is expected to grow further on increasing the number of available 2D crystals and improving their electronic quality.
机译:石墨烯和相关2D材料的出现最近导致了一项新技术:基于这些原子薄晶体的异质结构。该范例证明了自己的多功能性,并导致了具有负差分电阻的隧穿二极管,隧穿晶体管,光伏器件等的快速演示。在这里,我们通过引入以一种原子平面精度设计的量子阱(QW),将这种范德华异质结构的复杂性和功能性提升到了新的水平。我们描述了通过将金属石墨烯,绝缘的六方氮化硼和各种半导体单层堆叠成复杂但经过精心设计的序列制成的发光二极管(LED)。我们的第一批设备已经展现出近10%的非本征量子效率,并且可以通过适当选择和组合2D半导体(过渡金属二卤化物单层)在很宽的频率范围内调节发射。通过在弹性和透明基板上制备异质结构,我们表明它们也可以为柔性和半透明电子学提供基础。随着增加的可用2D晶体数量和改善其电子质量,预计已证明的异质结构的功能范围将进一步扩大。

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