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Evgeniia Slivina

Researcher at Karlsruhe Institute of Technology

Publications -  10
Citations -  47

Evgeniia Slivina is an academic researcher from Karlsruhe Institute of Technology. The author has contributed to research in topics: Wafer & Crystalline silicon. The author has an hindex of 2, co-authored 10 publications receiving 22 citations.

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Tailored Light Scattering through Hyperuniform Disorder in Self-Organized Arrays of High-Index Nanodisks

TL;DR: In this paper, hyperuniform disorder in self-organized large-area arrays of high refractive index nanodisks enables both structure and form factor to impact the resulting scattering pattern, offering novel means to tailor light scattering.
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Insights into Backscattering Suppression in Solar Cells from the Helicity-Preservation Point of View

TL;DR: In this article, the authors studied the physics of back-reflection from the point of view of symmetries and conservation laws, and tied antireflection performance to two conditions: a high enough degree of discrete rotational symmetry of the array, and the suppression of crosstalk between the two helicities of the electromagnetic field.
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Insights into broadband backscattering suppression in solar cells from the helicity preservation point of view.

TL;DR: In this article, the anti-reflection performance of nano-particle arrays on top of solar cell stacks is related to a high enough degree of discrete rotational symmetry and the ability of the system to suppress cross-talk between the two handednesses (helicities) of the electromagnetic field upon light-matter interaction.
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Annual energy yield of mono- and bifacial silicon heterojunction solar modules with high-index dielectric nanodisk arrays as anti-reflective and light trapping structures.

TL;DR: In this article, the authors analyzed the annual energy yield of relatively thin (crystalline silicon (c-Si) wafer thickness between 5 μm and 80 μm) heterojunction (HJT) solar module architectures when optimized anti-reflective and light trapping titanium dioxide (TiO2) nanodisk square arrays are applied on the front and rear cell interfaces, respectively.