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剥离黑磷中的光氧化和量子限域效应。

Photooxidation and quantum confinement effects in exfoliated black phosphorus.

机构信息

Regroupement Québécois sur les Matériaux de Pointe (RQMP) and Département de physique, Université de Montréal, Montréal, Québec H3C 3J7, Canada.

RQMP and Département de chimie, Université de Montréal, Montréal, Québec H3C 3J7, Canada.

出版信息

Nat Mater. 2015 Aug;14(8):826-32. doi: 10.1038/nmat4299. Epub 2015 May 25.

Abstract

Thin layers of black phosphorus have recently raised interest owing to their two-dimensional (2D) semiconducting properties, such as tunable direct bandgap and high carrier mobilities. This lamellar crystal of phosphorus atoms can be exfoliated down to monolayer 2D-phosphane (also called phosphorene) using procedures similar to those used for graphene. Probing the properties has, however, been challenged by a fast degradation of the thinnest layers on exposure to ambient conditions. Herein, we investigate this chemistry using in situ Raman and transmission electron spectroscopies. The results highlight a thickness-dependent photoassisted oxidation reaction with oxygen dissolved in adsorbed water. The oxidation kinetics is consistent with a phenomenological model involving electron transfer and quantum confinement as key parameters. A procedure carried out in a glove box is used to prepare mono-, bi- and multilayer 2D-phosphane in their pristine states for further studies on the effect of layer thickness on the Raman modes. Controlled experiments in ambient conditions are shown to lower the A(g)(1)/A(g)(2) intensity ratio for ultrathin layers, a signature of oxidation.

摘要

近年来,由于具有二维(2D)半导体性质,如可调带隙和高载流子迁移率,薄层黑磷引起了人们的兴趣。这种层状磷原子晶体可以通过类似于石墨烯的剥离程序剥离到单层二维磷烷(也称为磷烯)。然而,在暴露于环境条件下,最薄的层会迅速降解,这使得对其性质的探测受到了挑战。在此,我们使用原位拉曼和透射电子光谱法研究了这种化学性质。结果突出了与吸附水中溶解氧的厚度相关的光辅助氧化反应。氧化动力学与一个涉及电子转移和量子限制作为关键参数的唯象模型一致。我们使用手套箱中进行的程序,在其原始状态下制备了单层、双层和多层 2D-磷烷,以便进一步研究层厚度对拉曼模式的影响。在环境条件下进行的对照实验表明,超薄层的 A(g)(1)/A(g)(2)强度比降低,这是氧化的特征。

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