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首页> 外文期刊>ACS combinatorial science >Combinatorial Synthesis and High-Throughput Characterization of Fe–V–O Thin-Film Materials Libraries for Solar Water Splitting
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Combinatorial Synthesis and High-Throughput Characterization of Fe–V–O Thin-Film Materials Libraries for Solar Water Splitting

机译:Fe-V-O薄膜材料库的组合合成与高通量表征太阳能水分裂

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摘要

The search for suitable materials for solar water splitting is addressed with combinatorial material science methods. Thin film Fe–V–O materials libraries were synthesized using combinatorial reactive magnetron cosputtering and subsequent annealing in air. The design of the libraries comprises a combination of large compositional gradients (from Fe_(10)V_(90)O_(x ) to Fe_(79)V_(21)O_(x )) and thickness gradients (from 140 to 425 nm). These material libraries were investigated by high-throughput characterization techniques in terms of composition, structure, optical, and photoelectrochemical properties to establish correlations between composition, thickness, crystallinity, microstructure, and photocurrent density. Results show the presence of the Fe_(2)V_(4)O_(13) phase from ~11 to 42 at. % Fe (toward low-Fe region) and the FeVO_(4) phase from ~37 to 79 at. % Fe (toward Fe-rich region). However, as a third phase, Fe_(2)O_(3) is present throughout the compositional gradients (from low-Fe to Fe-rich region). Material compositions with increasing crystallinity of the FeVO_(4) phase show enhanced photocurrent densities (~160 to 190 μA/cm~(2)) throughout the thickness gradients whereas compositions with the Fe_(2)V_(4)O_(13) phase show comparatively low photocurrent densities (~28 μA/cm~(2)). The band gap energies of Fe–V–O films were inferred from Tauc plots. The highest photocurrent density of ~190 μA/cm~(2) was obtained for films with ~54 to 66 at. % Fe for the FeVO_(4) phase with ~2.04 eV for the indirect and ~2.80 eV for the direct band gap energies.
机译:采用组合材料科学方法寻找用于太阳能分裂的合适材料。薄膜Fe-V-O材料文库是使用组合反应磁控腐蚀组合合成的,随后在空气中进行退火。库的设计包括大型组成梯度的组合(来自FE_(10)V_(90)O _(

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