Predictive synthesis–structure–property relationships are at the core of materials design for novel applications. In this regard, correlations between the compositional stoichiometry variations and functional properties are essential for enhancing the performance of devices based on these materials. In this work, we investigate the effect of stoichiometry variations and defects on the structural and optoelectronic properties of monocrystalline zinc phosphide (Zn3P2), a promising compound for photovoltaic applications. We use experimental methods, such as electron and x-ray diffraction and Raman spectroscopy, along with density functional theory calculations, to showcase favorable creation of P interstitial defects over Zn vacancies in P-ric...
Zinc phosphide (Zn3P2) is an ideal absorber candidate for solar cells thanks to its direct bandgap, ...
Zinc phosphide (Zn3P2) is an ideal absorber candidate for solar cells thanks to its direct bandgap, ...
Zinc phosphide (Zn3P2) is an ideal absorber candidate for solar cells thanks to its direct bandgap, ...
Predictive synthesis–structure–property relationships are at the core of materials design for novel ...
Growth approaches that limit the interface area between layers to nanoscale regions are emerging as ...
Growth approaches that limit the interface area between layers to nanoscale regions are emerging as ...
Growth approaches that limit the interface area between layers to nanoscale regions are emerging as ...
Zinc phosphide, Zn3P2, is a semiconductor with a high absorption coefficient in the spectral range r...
Zinc phosphide (Zn_3P_2) could be the basis for cheap and highly efficient solar cells. Its use in t...
Binary II-V semiconductors are highly optically active materials, possess high intrinsic mechanical ...
Earth-abundant and low-cost semiconductors, such as zinc phosphide (Zn3P2), are promising candidates...
Binary II-V semiconductors are highly optically active materials, possess high intrinsic mechanical ...
Binary II-V semiconductors are highly optically active materials, possess high intrinsic mechanical ...
Binary II-V semiconductors are highly optically active materials, possess high intrinsic mechanical ...
Zinc phosphide (Zn3P2) is an ideal absorber candidate for solar cells thanks to its direct bandgap, ...
Zinc phosphide (Zn3P2) is an ideal absorber candidate for solar cells thanks to its direct bandgap, ...
Zinc phosphide (Zn3P2) is an ideal absorber candidate for solar cells thanks to its direct bandgap, ...
Zinc phosphide (Zn3P2) is an ideal absorber candidate for solar cells thanks to its direct bandgap, ...
Predictive synthesis–structure–property relationships are at the core of materials design for novel ...
Growth approaches that limit the interface area between layers to nanoscale regions are emerging as ...
Growth approaches that limit the interface area between layers to nanoscale regions are emerging as ...
Growth approaches that limit the interface area between layers to nanoscale regions are emerging as ...
Zinc phosphide, Zn3P2, is a semiconductor with a high absorption coefficient in the spectral range r...
Zinc phosphide (Zn_3P_2) could be the basis for cheap and highly efficient solar cells. Its use in t...
Binary II-V semiconductors are highly optically active materials, possess high intrinsic mechanical ...
Earth-abundant and low-cost semiconductors, such as zinc phosphide (Zn3P2), are promising candidates...
Binary II-V semiconductors are highly optically active materials, possess high intrinsic mechanical ...
Binary II-V semiconductors are highly optically active materials, possess high intrinsic mechanical ...
Binary II-V semiconductors are highly optically active materials, possess high intrinsic mechanical ...
Zinc phosphide (Zn3P2) is an ideal absorber candidate for solar cells thanks to its direct bandgap, ...
Zinc phosphide (Zn3P2) is an ideal absorber candidate for solar cells thanks to its direct bandgap, ...
Zinc phosphide (Zn3P2) is an ideal absorber candidate for solar cells thanks to its direct bandgap, ...
Zinc phosphide (Zn3P2) is an ideal absorber candidate for solar cells thanks to its direct bandgap, ...