Tuning the band gap and polarization of BaSnO 3 /SrSnO 3 superlattices for photovoltaic applications

Band gap and polarization are two important quantities for enhancing the performance of photovoltaic materials. Based on first-principles calculations, we demonstrate that direct band gap and hybrid improper ferroelectric polarization coexist in BaSnO /SrSnO superlattices. Furthermore, the band gap...

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Veröffentlicht in:Physical chemistry chemical physics : PCCP 2017-03, Vol.19 (10), p.7032-7039
Hauptverfasser: Zhang, Yajun, Sahoo, M P K, Wang, Jie
Format: Artikel
Sprache:eng
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Zusammenfassung:Band gap and polarization are two important quantities for enhancing the performance of photovoltaic materials. Based on first-principles calculations, we demonstrate that direct band gap and hybrid improper ferroelectric polarization coexist in BaSnO /SrSnO superlattices. Furthermore, the band gap and polarization can be simultaneously tuned by mechanical strain and pressure. In the presence of tensile strain or negative pressure, the band gap is substantially lowered and the polarization is enhanced by about five times in comparison with that without mechanical loads. The lowered band gap is necessary for increasing the efficiency of light absorption, whereas the enhanced polarization is desirable for the separation of photo-excited carriers in the materials. The present work suggests that the strained BaSnO /SrSnO superlattices are promising ferroelectric semiconducting materials for photovoltaic applications.
ISSN:1463-9076
1463-9084
DOI:10.1039/C6CP06042K