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掺杂蜂窝状 BN 单层中的谷赝自旋和宽可调带隙。

Valley Pseudospin with a Widely Tunable Bandgap in Doped Honeycomb BN Monolayer.

机构信息

Center for Programmable Materials, School of Materials Science and Engineering, Nanyang Technological University , Singapore 639798.

Institute of Physics, Chinese Academy of Sciences , Beijing 100190, China.

出版信息

Nano Lett. 2017 Mar 8;17(3):2079-2087. doi: 10.1021/acs.nanolett.7b00271. Epub 2017 Feb 22.

Abstract

Valleytronics is a promising paradigm to explore the emergent degree of freedom for charge carriers on the energy band edges. Using ab initio calculations, we reveal that the honeycomb boron nitride (h-BN) monolayer shows a pair of inequivalent valleys in the vicinities of the vertices of hexagonal Brillouin zone even without the protection of the C symmetry. The inequivalent valleys give rise to a 2-fold degree of freedom named the valley pseudospin. The valley pseudospin with a tunable bandgap from deep ultraviolet to far-infrared spectra can be obtained by doping h-BN monolayer with carbon atoms. For a low-concentration carbon periodically doped h-BN monolayer, the subbands with constant valley Hall conductance are predicted due to the interaction between the artificial superlattice and valleys. In addition, the valley pseudospin can be manipulated by visible light for high-concentration carbon doped h-BN monolayer. In agreement with our calculations, the circularly polarized photoluminescence spectra of the BNC sample show a maximum valley-contrasting circular polarization of 40% and 70% at room temperature and 77 K, respectively. Our work demonstrates a class of valleytronic materials with a controllable bandgap.

摘要

谷电子学是探索能带边缘电荷载流子新自由度的一种很有前途的范例。通过第一性原理计算,我们揭示了即使在没有 C 对称性保护的情况下,蜂窝状氮化硼(h-BN)单层在六角布里渊区顶点附近也表现出一对不等价的谷。不等价的谷导致了一种具有可调带隙的 2 重自由度,称为谷赝自旋。通过在 h-BN 单层中掺杂碳原子,可以获得从深紫外到远红外光谱的可调带隙谷赝自旋。对于低浓度碳周期性掺杂的 h-BN 单层,由于人工超晶格和谷之间的相互作用,预测会出现具有恒定谷霍尔电导的子带。此外,对于高浓度碳掺杂的 h-BN 单层,谷赝自旋可以通过可见光来操纵。与我们的计算结果一致,BNC 样品的圆偏振光致发光光谱在室温下和 77 K 下分别显示出最大谷对比圆偏振度为 40%和 70%。我们的工作展示了一类具有可控带隙的谷电子学材料。

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