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Design of a Plasmonic Photocatalyst Structure Consisting of Metallic Nanogratings for Light-Trapping Enhancement

机译:由金属纳米纳米植物组成的等离子体光催化剂结构设计,用于轻捕

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摘要

In this paper, a novel SPP-based photocatalytic system with high photocatalytic performance consisting metallic nanograting elements is proposed and simulated numerically with finite-differential time-domain (FDTD) method. Various nanograting metallic shapes, rectangular and trapezoidal, are studied. Results shows that the absorption significantly increases for the trapezoidal grating-based structure compared to its flat and rectangular grating elements. In addition, the effect of the incident angle of the sun light is considered to achieve an optimum design. It is found that in all angles of the incidence, trapezoidal grating (TG) has larger visible photocatalytic activities than the flat and rectangular cases. The best configuration was realized for the trapezoidal grating-based structure at 60 degrees of inclination when the height of the grating elements is 43nm. The photocatalytic activity of the metallic grating structure was attributed to scattering of the incident light and return to the host TiO2 medium and the surface plasmon excitation of the metallic elements.
机译:本文采用了一种具有高光催化性能的新型SPP基光催化系统,其用有限差分时域(FDTD)方法在数值上进行了数值和模拟。研究了各种纳入金属形状,矩形和梯形。结果表明,与矩形光栅元件相比,梯形光栅结构的吸收显着增加。另外,阳光的入射角的效果被认为是实现最佳设计。结果发现,在发生率的所有角度,梯形光栅(Tg)具有比平坦和矩形壳体更大的可见光催化活性。当光栅元件的高度为43nm时,在60度的倾斜度下实现最佳配置。金属光栅结构的光催化活性归因于入射光的散射并返回到宿主TiO 2培养基和金属元素的表面等离子体激发。

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