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热退火少层黑磷的各向异性可见光致发光。

Anisotropic visible photoluminescence from thermally annealed few-layer black phosphorus.

作者信息

Zhao Chuan, Sekhar M Chandra, Lu Wei, Zhang Chenglong, Lai Jiawei, Jia Shuang, Sun Dong

机构信息

International Center for Quantum Materials, School of Physics, Peking University, Beijing 100871, People's Republic of China. Collaborative Innovation Center of Quantum Matter, Beijing 100871, People's Republic of China.

出版信息

Nanotechnology. 2018 Jun 15;29(24):245202. doi: 10.1088/1361-6528/aab98e. Epub 2018 Mar 26.

Abstract

Black phosphorus, a two-dimensional material, with high carrier mobility, tunable direct bandgap and anisotropic electronic properties has attracted enormous research interest towards potential application in electronic, optoelectronic and optomechanical devices. The bandgap of BP is thickness dependent, ranging from 0.3 eV for bulk to 1.3 eV for monolayer, while lacking in the visible region, a widely used optical regime for practical optoelectronic applications. In this work, photoluminescence (PL) centered at 605 nm is observed from the thermally annealed BP with thickness ≤20 nm. This higher energy PL is most likely the consequence of the formation of higher bandgap phosphorene oxides and suboxides on the surface BP layers as a result of the enhanced rate of oxidation. Moreover, the polarization-resolved PL measurements show that the emitted light is anisotropic when the excitation polarization is along the armchair direction. However, if excited along zigzag direction, the PL is nearly isotropic. Our findings suggest that the thermal annealing of BP can be used as a convenient route to fill the visible gap of the BP-based optoelectronic and optomechanical devices.

摘要

黑磷作为一种二维材料,具有高载流子迁移率、可调节的直接带隙和各向异性的电子特性,在电子、光电子和光机械设备的潜在应用方面引起了巨大的研究兴趣。黑磷的带隙取决于其厚度,从体材料的0.3电子伏特到单层的1.3电子伏特不等,然而在可见光区域缺乏(合适的带隙),而可见光区域是实际光电子应用中广泛使用的光学波段。在这项工作中,从厚度≤20纳米的热退火黑磷中观察到了以605纳米为中心的光致发光(PL)。这种更高能量的光致发光很可能是由于表面黑磷层上氧化速率加快而形成了更高带隙的磷氧化物和亚氧化物的结果。此外,偏振分辨光致发光测量表明,当激发偏振沿扶手椅方向时,发射光具有各向异性。然而,如果沿锯齿方向激发,光致发光几乎是各向同性的。我们的研究结果表明,黑磷的热退火可以作为一种便捷的途径来填补基于黑磷的光电子和光机械设备的可见光带隙。

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