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The impact of hexagonal boron nitride encapsulation on the structural and vibrational properties of few layer black phosphorus

机译:六边形氮化物包封对少数黑磷的结构和振动性能的影响

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摘要

The encapsulation of two-dimensional layered materials such as black phosphorus is of paramount importance for their stability in air. However, the encapsulation poses several questions, namely, how it affects, via the weak van der Waals forces, the properties of the black phosphorus and whether these properties can be tuned on demand. Prompted by these questions, we have investigated the impact of hexagonal boron nitride encapsulation on the structural and vibrational properties of few layer black phosphorus, using a first-principles method in the framework of density functional theory. We demonstrate that the encapsulation with hexagonal boron nitride imposes biaxial strain on the black phosphorus material, flattening its puckered structure, by decreasing the thickness of the layers via the increase of the puckered angle and the intra-layer P-P bonds. This work exemplifies the evolution of structural parameters in layered materials after the encapsulation process. We find that after encapsulation, phosphorene (single layer black phosphorous) contracts by 1.1% in the armchair direction and stretches by 1.3% in the zigzag direction, whereas few layer black phosphorus mainly expands by up to 3% in the armchair direction. However, these relatively small strains induced by the hexagonal BN, lead to significant changes in the vibrational properties of black phosphorus, with the redshifts of up to 10 cm(-1) of the high frequency optical mode A(g)(1). In general, structural changes induced by the encapsulation process open the door to substrate controlled strain engineering in two-dimensional crystals.
机译:诸如黑磷的二维层状材料的封装对于它们在空气中的稳定性至关重要。然而,封装通过弱范德瓦尔斯力量,黑色磷的性质以及这些性质是否可以按需调整,封装造成几个问题,即如何影响黑色磷的性质。这些问题提示,我们研究了使用密度函数理论框架中的第一原理方法对少数层黑磷的结构和振动性能的影响。我们证明,用六边形氮化物的封装在黑色磷材料上施加双轴应变,通过褶皱角度和层内P-P键的增加来降低层的厚度来平坦化其褶皱结构。本作品举例说明在封装过程之后层状材料中结构参数的演变。我们发现在封装后,亚磷烯(单层黑色磷)在扶手椅方向上收缩1.1%,沿曲折方向延伸1.3%,而少数层黑磷主要在扶手椅方向上膨胀高达3%。然而,由六边形BN诱导的这些相对小的菌株导致黑磷的振动性能的显着变化,具有高达10cm(-1)的高频光学模式A(g)(1)的红移。通常,封装过程诱导的结构变化在二维晶体中打开到基板控制应变工程的门。

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