Department of Physics, Beijing Key Laboratory of Opto-electronic Functional Materials & Micro-nano Devices, Renmin University of China, Beijing 100872, People's Republic of China.
Hefei National Laboratory for Physical Sciences at Microscale and Department of Physics, University of Science and Technology of China and Key Laboratory of Strongly-Coupled Quantum Matter Physics, Chinese Academy of Sciences, Hefei, Anhui 230026, People's Republic of China.
Phys Rev Lett. 2016 Feb 26;116(8):087401. doi: 10.1103/PhysRevLett.116.087401.
The recent renaissance of black phosphorus (BP) as a two-dimensional (2D) layered material has generated tremendous interest, but its unique structural characters underlying many of its outstanding properties still need elucidation. Here we report Raman measurements that reveal an ultralow-frequency collective compression mode (CCM) in BP, which is unprecedented among similar 2D layered materials. This novel CCM indicates an unusually strong interlayer coupling, and this result is quantitatively supported by a phonon frequency analysis and first-principles calculations. Moreover, the CCM and another branch of low-frequency Raman modes shift sensitively with changing number of layers, allowing an accurate determination of the thickness up to tens of atomic layers, which is considerably higher than previously achieved by using high-frequency Raman modes. These findings offer fundamental insights and practical tools for further exploration of BP as a highly promising new 2D semiconductor.
最近,黑磷(BP)作为一种二维(2D)层状材料重新引起了人们的兴趣,但它独特的结构特征对其许多优异性能的影响仍需要阐明。在这里,我们报告了 Raman 测量结果,揭示了 BP 中存在一种超低频集体压缩模式(CCM),这在类似的 2D 层状材料中是前所未有的。这种新的 CCM 表明了层间耦合的异常强,这一结果得到了声子频率分析和第一性原理计算的定量支持。此外,CCM 和另一个低频 Raman 模的分支随层数的变化而灵敏地移动,这使得能够准确地确定厚度达到数十个原子层,这比以前使用高频 Raman 模实现的要高得多。这些发现为进一步探索 BP 作为一种极具前景的新型 2D 半导体提供了基础见解和实用工具。