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Intercalating MnO2 Nanosheets With Transition Metal Cations to Enhance Oxygen Evolution

机译:嵌入MNO2纳米片与过渡金属阳离子以增强氧气进化

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The catalytic activity of MnO2 nanosheets towards oxygen evolution depends highly on their interlayer environment. We present a systematic investigation on fine-tuning of the interlayer environment of MnO2 nanosheets by intercalation through a facile cation exchange with inexpensive first-row transition metal cations, including Ni2+, Co2+, Cu2+,Zn2+, and Fe3+ ions. Among them, the Ni-intercalated MnO(2 )nanosheets show remarkably enhanced OER activity and long-term stability, compared to pristine MnO2 nanosheets. The overpotential of 330 mV at a current density of 10 mAcm(-2) is observed for the Ni-intercalated MnO2 nanosheets. The ehancement mechanism of OER is studied by comparing physiochemical properties, such as the oxidation state of Mn, the interlayer distance, the increase in the disorder/twisting of MnO6 octahedra, and the interlayer cooperative binding of water molecules. The Ni intercalation, different from other metal cations, strengthens the Mn-O bond perpendicularly to the layer chains to facilitate the interlayer catalysis possibly between two Mn sites, and thus promotes the efficiency of oxygen evolution.
机译:MnO2纳米液升氧气演化的催化活性在其层间环境上高度取决于高度。我们通过与廉价的第一行过渡金属阳离子的容插,包括嵌入MnO2纳米蛋白晶体间环境的微调,包括Ni2 +,CO 2 +,Cu2 +,Zn2 +和Fe3 +离子。其中,与原始MnO2纳米片相比,Ni嵌入的MNO(2)纳米蛋白酶显着增强了oer活性和长期稳定性。对于Ni嵌入的MNO2纳米片,观察到在10mCM(-2)的电流密度下的330mV的过电位。通过比较Mn的氧化状态,层间距离,介性距离,MnO6八面物的紊乱的增加,以及水分子的中间层合作结合来研究oer的EER的EER的EER。与其他金属阳离子不同的Ni嵌段,垂直于层链加强Mn-O键,以促进可能在两个Mn位点之间的中间层催化,从而促进氧气进化的效率。

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