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- W2025897990 abstract "In this work, the performance of compositionally graded axial junction In x Ga 1‒x N nanorod solar cells with an absorber region of In 0.45 Ga 0.55 N (Eg∼1.8eV) is examined using the finite element semiconductor device simulation software Taurus Medici from Synopsys®. While nanorod structures can provide significant strain relief resulting in excellent crystalline quality of the typically defect-ridden full-spectrum InGaN ternary semiconductor alloy, we show that other considerations must be taken into account to justify the use of InGaN axial junction nanorods for photovoltaic applications. Without considering light trapping effects, the reduction in junction area can significantly limit the collection efficiency of the nanorods. Further, the greater periphery surface area of the nanorods can lead to substantial increase in surface recombination with significant decline in the short-circuit current density J sc and the open-circuit voltage V oc for the simulated device structure. Even with a predefined zero surface recombination velocity, the proximity of the nanorod circumferential surface to the axial junction can lead to electric field fringing effects that degrade the V oc . In all, surface recombination is found to be the major factor limiting the performance of the In x Ga 1‒x N axial junction nanorod solar cells examined." @default.
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- W2025897990 date "2012-06-01" @default.
- W2025897990 modified "2023-10-06" @default.
- W2025897990 title "Numerical modeling of axial junction compositionally graded In<inf>x</inf>Ga<inf>1−x</inf>N nanorod solar cells" @default.
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- W2025897990 doi "https://doi.org/10.1109/pvsc.2012.6317964" @default.
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