Short-Period (GaP1− x N x ) n (GaP1− y As y ) m Superlattices for III-V Solar Cell Integration on Silicon

Abstract (GaP1−xNx)n(GaP1−yAsy)m heterostructures lattice-matched (LM) with Si are interesting for the integration of optoelectronic devices or solar cells (SCs) with standard Si technology. The growth and properties of 50-period (GaP1−xNx)n(GaP1−yAsy)m superlattices that are grown epitaxially on nominally (001)-oriented Si substrates are reported, using gaseous precursors in ultra-high vacuum. These heterostructures are expected to exhibit type-II band alignment because of the addition of N or As to GaP, the former reducing the conduction band energy while the latter increases the valence band energy. Two short-period superlattices with n = 12 and m = 4 monolayers, with different N and As mole fractions are designed and grown, intended to be LM with Si. The results show the high structural quality of these superlattices, with no extended defects such as dislocations, twins or stacking faults observed in the TEM-examined regions. Both samples show intense near-band-edge photoluminescence with room temperature bandgap energies in the range 1.8 to 1.9 eV. The absorption coefficient spectrum exhibits a direct band-like behavior near the absorption edge, approaching to a plateau with values in the range α ∼ 2 × 104 cm−1 above the absorption edge, which are comparable to those obtained for high efficiency SC materials.

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Publication Details

Journal
ACS Applied Nano Materials
Published
2026-10-09
DOI
https://doi.org/10.1021/acsanm.6c02919
Primary Topic
solar cell performance optimization
Type
article
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article

Short-Period (GaP1− x N x ) n (GaP1− y As y ) m Superlattices for III-V Solar Cell Integration on Silicon

María Jesús Hernández, Basilio Javier García, Karim Ben Saddik, Roman L. Volkov et al.
ACS Applied Nano Materials
solar cell performance optimization
article

Short-Period (GaP1− x N x ) n (GaP1− y As y ) m Superlattices for III-V Solar Cell Integration on Silicon

María Jesús Hernández, Basilio Javier García, Karim Ben Saddik, Roman L. Volkov, María Ángela Pampillón Arce, Н. И. Боргардт, Manuel Cervera, Alexandra Reshetnyak
article en

Abstract

Abstract (GaP1−xNx)n(GaP1−yAsy)m heterostructures lattice-matched (LM) with Si are interesting for the integration of optoelectronic devices or solar cells (SCs) with standard Si technology. The growth and properties of 50-period (GaP1−xNx)n(GaP1−yAsy)m superlattices that are grown epitaxially on nominally (001)-oriented Si substrates are reported, using gaseous precursors in ultra-high vacuum. These heterostructures are expected to exhibit type-II band alignment because of the addition of N or As to GaP, the former reducing the conduction band energy while the latter increases the valence band energy. Two short-period superlattices with n = 12 and m = 4 monolayers, with different N and As mole fractions are designed and grown, intended to be LM with Si. The results show the high structural quality of these superlattices, with no extended defects such as dislocations, twins or stacking faults observed in the TEM-examined regions. Both samples show intense near-band-edge photoluminescence with room temperature bandgap energies in the range 1.8 to 1.9 eV. The absorption coefficient spectrum exhibits a direct band-like behavior near the absorption edge, approaching to a plateau with values in the range α ∼ 2 × 104 cm−1 above the absorption edge, which are comparable to those obtained for high efficiency SC materials.

ACS Applied Nano Materials
National Research University of Electronic Technology (RU), Universidad Autónoma de Madrid (ES)
Openalex Percentile: Top 23%
solar cell performance optimization
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Short-Period (GaP1− x N x ) n (GaP1− y As y ) m Superlattices for III-V Solar Cell Integration on Silicon — María Jesús Hernández, Basilio Javier García, et al. · ACS Applied Nano Materials (2026) | TGRS Research Map | TGRS