Debu Desalegn T, Bauman Stephen J, French David, Churchill Hugh O H, Herzog Joseph B
University of Arkansas, Department of Physics, Fayetteville, Arkansas, 72701, USA.
University of Arkansas, Microelectronics-Photonics Graduate Program, Fayetteville, Arkansas, 72701, USA.
Sci Rep. 2018 Feb 19;8(1):3224. doi: 10.1038/s41598-018-21365-2.
We report on the tunable edge-plasmon-enhanced absorption of phosphorene nanoribbons supported on a dielectric substrate. Monolayer anisotropic black phosphorous (phosphorene) nanoribbons are explored for light trapping and absorption enhancement on different dielectric substrates. We show that these phosphorene ribbons support infrared surface plasmons with high spatial confinement. The peak position and bandwidth of the calculated phosphorene absorption spectra are tunable with low loss over a wide wavelength range via the surrounding dielectric environment of the periodic nanoribbons. Simulation results show strong edge plasmon modes and enhanced absorption as well as a red-shift of the peak resonance wavelength. The periodic Fabry-Perot grating model was used to analytically evaluate the absorption resonance arising from the edge of the ribbons for comparison with the simulation. The results show promise for the promotion of phosphorene plasmons for both fundamental studies and potential applications in the infrared spectral range.
我们报道了在介电衬底上支撑的磷烯纳米带的可调谐边缘等离子体增强吸收。研究了单层各向异性黑磷(磷烯)纳米带在不同介电衬底上的光捕获和吸收增强。我们表明,这些磷烯带支持具有高空间限制的红外表面等离子体。通过周期性纳米带的周围介电环境,计算得到的磷烯吸收光谱的峰值位置和带宽在很宽的波长范围内可实现低损耗调谐。模拟结果显示出强边缘等离子体模式、增强的吸收以及峰值共振波长的红移。使用周期性法布里 - 珀罗光栅模型对来自带边缘的吸收共振进行分析评估,以便与模拟结果进行比较。结果表明,磷烯等离子体在红外光谱范围内的基础研究和潜在应用方面都具有推广前景。