Successive redox-mediated visible-light ferrophotovoltaics.
basic_science · Level V
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- Record sourced from PubMed, PMID 32075971.
- Also identified by DOI 10.1038/s41467-020-14763-6 and PMC identifier 7031293.
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Abstract
Titanium oxide materials have multiple functions such as photocatalytic and photovoltaic effects. Ferroelectrics provide access to light energy conversion that delivers above-bandgap voltages arising from spatial inversion symmetry breaking, whereas their wide bandgap leads to poor absorption of visible light. Bandgap narrowing offers a potential solution, but this material modification suppresses spontaneous polarization and, hence, sacrifices photovoltages. Here, we report successive-redox mediated ferrophotovoltaics that exhibit a robust visible-light response. Our single-crystal experiments and ab initio calculations, along with photo-luminescence analysis, demonstrate that divalent Fe<sup>2+</sup> and trivalent Fe<sup>3+</sup> coexisted in a prototypical ferroelectric barium titanate BaTiO<sub>3</sub> introduce donor and acceptor levels, respectively, and that two sequential Fe<sup>3+</sup>/Fe<sup>2+</sup> redox reactions enhance the photogenerated power not only under visible light but also at photon energies greater than the bandgap. Our approach opens a promising route to the visible-light activation of photovoltaics and, potentially, of photocatalysts.