Abstract <p>Antireflectivity is crucial for optimizing the efficiency of solar cells. Achieving effective anti-reflection with high-refractive-index materials is challenging due to their inherently high reflectivity, as described by Fresnel equations. Recent research has explored the potential of nanorough surfaces–where the roughness parameters are much smaller than the wavelength of incident light. This focus has shifted with the advent of modern theoretical approaches that incorporate modified boundary conditions. Our study examines weakly rough opaque surfaces and demonstrates significant differences in predictions for the scattering coefficients compared to older theories. These findings are validated by experimental results on nano-roughened silicon films across wavelengths of 300–400 nm. At this part of the spectrum, the reflection is shown to decrease significantly, which opens new possibilities for solar cell technology to harness energy from previously inaccessible regions of the spectrum.</p>

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Modern Theoretical Approach for Description of Antireflectivity

  • V. Gareyan,
  • N. Margaryan,
  • Zh. Gevorkian

摘要

Abstract

Antireflectivity is crucial for optimizing the efficiency of solar cells. Achieving effective anti-reflection with high-refractive-index materials is challenging due to their inherently high reflectivity, as described by Fresnel equations. Recent research has explored the potential of nanorough surfaces–where the roughness parameters are much smaller than the wavelength of incident light. This focus has shifted with the advent of modern theoretical approaches that incorporate modified boundary conditions. Our study examines weakly rough opaque surfaces and demonstrates significant differences in predictions for the scattering coefficients compared to older theories. These findings are validated by experimental results on nano-roughened silicon films across wavelengths of 300–400 nm. At this part of the spectrum, the reflection is shown to decrease significantly, which opens new possibilities for solar cell technology to harness energy from previously inaccessible regions of the spectrum.