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Seed-mediated atomic-scale reconstruction of silver manganate nanoplates for oxygen reduction towards high-energy aluminum-air flow batteries

机译:种子介导的锰酸银纳米板的原子级重构用于还原高能铝空气流通电池中的氧气

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摘要

Aluminum–air batteries are promising candidates for next-generation high-energy-density storage, but the inherent limitations hinder their practical use. Here, we show that silver nanoparticle-mediated silver manganate nanoplates are a highly active and chemically stable catalyst for oxygen reduction in alkaline media. By means of atomic-resolved transmission electron microscopy, we find that the formation of stripe patterns on the surface of a silver manganate nanoplate originates from the zigzag atomic arrangement of silver and manganese, creating a high concentration of dislocations in the crystal lattice. This structure can provide high electrical conductivity with low electrode resistance and abundant active sites for ion adsorption. The catalyst exhibits outstanding performance in a flow-based aluminum–air battery, demonstrating high gravimetric and volumetric energy densities of ~2552 Wh kgAl−1 and ~6890 Wh lAl−1 at 100 mA cm−2, as well as high stability during a mechanical recharging process.
机译:铝空气电池是下一代高能量密度存储的有希望的候选者,但其固有的局限性限制了它们的实际使用。在这里,我们表明银纳米粒子介导的锰酸银纳米板是一种用于碱性介质中氧还原的高活性和化学稳定催化剂。通过原子分辨透射电子显微镜,我们发现锰酸银纳米板表面上条纹图案的形成源自银和锰的锯齿形原子排列,从而在晶格中产生高浓度的位错。这种结构可以提供高电导率,低电极电阻和丰富的离子吸附活性位。该催化剂在基于流动的铝空气电池中表现出出色的性能,表现出约2552 Wh kgAl -1 和〜6890 Wh lAl -1 的高重量和体积能密度在100 mA cm −2 下,以及在机械充电过程中的高稳定性。

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