AI Article Synopsis

  • Low-dimensional semiconductors have significant applications in optoelectronics, but their absorption strength compared to bulk semiconductors hasn't been quantitatively compared.
  • Researchers used atomistic tight-binding calculations to show that the absorptance of semiconductor quantum wells is consistent with a value defined by the fine-structure constant, corroborating experimental data.
  • The study leads to the conclusion that the absorptance quantum, which is consistent across different dimensionalities, governs the band-edge absorption of all direct semiconductors, demonstrated through experimental findings in both quantum dots and bulk materials.

Article Abstract

Low-dimensional semiconductors have found numerous applications in optoelectronics. However, a quantitative comparison of the absorption strength of low-dimensional versus bulk semiconductors has remained elusive. Here, we report generality in the band-edge light absorptance of semiconductors, independent of their dimensions. First, we provide atomistic tight-binding calculations that show that the absorptance of semiconductor quantum wells equals πα ( = 1 or 2 with α as the fine-structure constant), in agreement with reported experimental results. Then, we show experimentally that a monolayer (superlattice) of quantum dots has similar absorptance, suggesting an absorptance quantum of πα per (confined) exciton diameter. Extending this idea to bulk semiconductors, we experimentally demonstrate that an absorptance quantum equal to πα per exciton Bohr diameter explains their widely varying absorption coefficients. We thus provided compelling evidence that the absorptance quantum πα per exciton diameter rules the band-edge absorption of all direct semiconductors, regardless of their dimension.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8631736PMC
http://dx.doi.org/10.1021/acs.nanolett.1c02682DOI Listing

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