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A tailored double perovskite nanofiber catalyst enables ultrafast oxygen evolution

机译:量身定制的双重钙钛矿纳米纤维催化剂可实现超快的氧气释放

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摘要

Rechargeable metal–air batteries and water splitting are highly competitive options for a sustainable energy future, but their commercialization is hindered by the absence of cost-effective, highly efficient and stable catalysts for the oxygen evolution reaction. Here we report the rational design and synthesis of a double perovskite PrBa0.5Sr0.5Co1.5Fe0.5O5+δ nanofiber as a highly efficient and robust catalyst for the oxygen evolution reaction. Co-doping of strontium and iron into PrBaCo2O5+δ is found to be very effective in enhancing intrinsic activity (normalized by the geometrical surface area, ∼4.7 times), as validated by electrochemical measurements and first-principles calculations. Further, the nanofiber morphology enhances its mass activity remarkably (by ∼20 times) as the diameter is reduced to ∼20 nm, attributed to the increased surface area and an unexpected intrinsic activity enhancement due possibly to a favourable eg electron filling associated with partial surface reduction, as unravelled from chemical titration and electron energy-loss spectroscopy.
机译:可充电金属-空气电池和水分解法是可持续能源未来的极具竞争力的选择,但由于缺乏用于氧释放反应的具有成本效益,高效且稳定的催化剂,阻碍了它们的商业化。在这里,我们报告了双钙钛矿PrBa0.5Sr0.5Co1.5Fe0.5O5 +δ纳米纤维的合理设计和合成,该纳米纤维是用于氧释放反应的高效,坚固的催化剂。经电化学测量和第一性原理计算证明,将锶和铁共掺杂到PrBaCo2O5 +δ中对提高固有活性非常有效(通过几何表面积标准化,约为4.7倍)。此外,随着直径减小至约20 reducednm,纳米纤维的形态显着提高了其质量活性(约20倍),这归因于表面积的增加和意料之外的固有活性的增强,这可能是由于有利的,例如与部分表面相关的电子填充从化学滴定和电子能量损失光谱学中得出的减少量。

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