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首页> 外文期刊>Nanoscale >Enhancing the electrocatalytic activity and stability of Prussian blue analogues by increasing their electroactive sites through the introduction of Au nanoparticles
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Enhancing the electrocatalytic activity and stability of Prussian blue analogues by increasing their electroactive sites through the introduction of Au nanoparticles

机译:提高electrocatalytic活动和普鲁士蓝类似物的稳定性通过增加他们的电活性网站引入金纳米粒子

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Prussian blue analogues (PBAs) have been proven as excellent Earth-abundant electrocatalysts for the oxygen evolution reaction (OER) in acidic, neutral and alkaline media. Further improvements can be achieved by increasing their electrical conductivity, but scarce attention has been paid to quantify the electroactive sites of the electrocatalyst when this enhancement occurs. In this work, we have studied how the chemical design influences the specific density of electroactive sites in different Au-PBA nanostructures. Thus, we have first obtained and fully characterized a variety of monodisperse core@shell hybrid nanoparticles of Au@PBA (PBA of (NiFeII)-Fe-II and (CoFeII)-Fe-II) with different shell sizes. Their catalytic activity is evaluated by studying the OER, which is compared to pristine PBAs and other Au-PBA heterostructures. By using the coulovoltammetric technique, we have demonstrated that the introduction of 5-10% of Au in weight in the core@shell leads to an increase in the electroactive mass and thus, to a higher density of active sites capable of taking part in the OER. This increase leads to a significant decrease in the onset potential (up to 100 mV) and an increase (up to 420%) in the current density recorded at an overpotential of 350 mV. However, the Tafel slope remains unchanged, suggesting that Au reduces the limiting potential of the catalyst with no variation in the reaction kinetics. These improvements are not observed in other Au-PBA nanostructures mainly due to a lower contact between both compounds and the Au oxidation. Hence, an Au core activates the PBA shell and increases the conductivity of the resulting hybrid, while the PBA shell prevents Au oxidation. The strong synergistic effect existing in the core@shell structure evidences the importance of the chemical design for preparing PBA-based nanostructures exhibiting better electrocatalytic performances and higher electrochemical stabilities.
机译:普鲁士蓝类似物(pba)已被证明优秀的地球上充足的electrocatalysts氧进化反应(OER)在酸性,中性和碱性媒体。可以通过增加他们的电导,但稀缺一直注意量化的电活性的网站electrocatalyst这种增强发生时。这项工作中,我们研究了化学设计的具体密度的影响在不同的Au-PBA电活性的网站纳米结构。完全不同的单分散的特点Au@PBA core@shell混合纳米颗粒(PBA的(NiFeII) -Fe-II和(CoFeII) -Fe-II)不同外壳尺寸。评估通过研究OER,相比原始pba和其他Au-PBA异质结构。技术,我们已经证明了介绍的5 - 10%的非盟在重量core@shell导致增加电活性物质,因此,更高的密度活跃的站点能够参加OER。减少发病潜力(100 mV)和增加(420%)在当前在350 mV的过电压记录密度。然而,塔费尔斜率不变,表明非盟减少限制的潜力催化剂没有变化的反应动力学。其他Au-PBA纳米结构主要是较低的接触化合物和非盟氧化。壳牌和增加的导电率产生的混合,而PBA壳防止非盟氧化。core@shell结构证据化学设计准备的重要性PBA-based纳米结构表现出更好的electrocatalytic表演和更高的电化学稳定性。

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