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Phosphorene: Synthesis, Scale-Up, and Quantitative Optical Spectroscopy

机译:磷:合成,放大和定量光谱

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Phosphorene, a two-dimensional (2D) monolayer of black phosphorus, has attracted considerable theoretical interest, although the experimental realization of monolayer, bilayer, and few-layer flakes has been a significant challenge. Here, we systematically survey conditions for liquid exfoliation to achieve the first large-scale production of monolayer, bilayer, and few-layer phosphorus, with exfoliation demonstrated at the 10 g scale. We describe a rapid approach for quantifying the thickness of 20 phosphorus and show that monolayer and few-layer flakes produced by our approach are crystalline and unoxidized, while air exposure leads to rapid oxidation and the production of acid. With large quantities of 2D phosphorus now available, we perform the first quantitative measurements of the material's absorption edge which is nearly identical to the material's band gap under our experimental conditions as a function of flake thickness. Our interpretation of the absorbance spectrum relies on an analytical method introduced in this work, allowing the accurate determination of the absorption edge in polydisperse samples of quantum-confined semiconductors. Using this method, we found that the band gap of black phosphorus increased from 0.33 +/- 0.02 eV in bulk to 1.88 +/- 0.24 eV in bilayers, a range that is larger than that of any other 2D material. In addition, we quantified a higher-energy optical transition (VB-1 to CB), which changes from 2.0 eV in bulk to 3.23 eV in bilayers. This work describes several methods for producing and analyzing 2D phosphorus while also yielding a class of 2D materials with unprecedented optoelectronic properties.
机译:磷,黑磷的二维(2D)单层,吸引了相当大的理论兴趣,尽管单层,双层和几层薄片的实验实现一直是一项重大挑战。在这里,我们系统地调查了液体剥落的条件,以实现首次大规模生产单层,双层和几层磷,剥落的规模为10 g。我们描述了一种定量20种磷的厚度的快速方法,并表明通过我们的方法生产的单层和少层薄片是晶体且未被氧化,而空气暴露会导致快速氧化和酸的产生。现在有了大量的2D磷,我们对材料的吸收边缘进行了首次定量测量,在我们的实验条件下,该吸收边缘几乎与材料的带隙相同(随薄片厚度变化)。我们对吸收光谱的解释依赖于这项工作中引入的一种分析方法,可以准确确定量子受限半导体的多分散样品中的吸收边缘。使用这种方法,我们发现黑磷的带隙从本体的0.33 +/- 0.02 eV增加到双层的1.88 +/- 0.24 eV,该范围大于任何其他2D材料的范围。另外,我们量化了一个更高能量的光学跃迁(VB-1到CB),该跃迁从双层的2.0 eV变为双层的3.23 eV。这项工作描述了几种产生和分析2D磷的方法,同时还产生了一类具有空前光电特性的2D材料。

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