| Literature DB >> 24168131 |
Shiwei Zhou1, Xiaodong Huang, Qing Li, Yi Min Xie.
Abstract
The shape of metallic nanoparticles used to enhance the performance of thin-film solar cells is described by Gielis' superformula and optimized by an evolutionary algorithm. As a result, we have found a lens-like nanoparticle capable of improving the short circuit current density to 19.93 mA/cm2. Compared with a two-scale nanospherical configuration recently reported to synthesize the merits of large and small spheres into a single structure, the optimized nanoparticle enables the solar cell to achieve a further 7.75% improvement in the current density and is much more fabrication friendly due to its simple shape and tolerance to geometrical distortions.Entities:
Year: 2013 PMID: 24168131 PMCID: PMC3874659 DOI: 10.1186/1556-276X-8-447
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1Schematic and cross section of a thin-film solar cell. (a) A 3-D schematic of a nanoparticle-enhanced thin-film solar cell. (b) Cross section of such a solar cell on the vertical symmetry plane.
Figure 2A variety of complex shapes in terms of Gielis' superformula.
Intermediate nanoparticles in the optimization
| 17.9778 | 142 | 6,917.3889 | 188.7937 | 6 | 246.5756 | 337.3163 | 71.1604 | |
| 18.6231 | 158 | 19,964.3647 | 711.4337 | 10 | 15,278.7838 | 1,812.3877 | 81.6840 | |
| 19.1814 | 72 | 1,774.9 | 74.6116 | 12 | 1,315.1222 | 473.4534 | 49.0618 | |
| 19.4887 | 10 | 1,113.2549 | 196.8687 | 116 | 1,268.8916 | 3.2545 | 43.1573 |
Figure 3Optimization process results. (a) 3-D view of the optimized lens-like nanostructure. (b, c) The attained Jsc and cross-sectional profiles of the lens-like particles on x-y and x-z planes. (d, e) The electric intensity on the cross section of the lens-like nanoparticle on x-z and x-y planes. (f) Contour of the logarithmic scale of the absorbed energy per unit volume on the x-z plane.