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Ionic liquid modified graphene nanosheets anchoring manganese oxide nanoparticles as efficient electrocatalysts for Zn-air batteries

机译:离子液体改性的石墨烯纳米片锚固了氧化锰纳米颗粒作为锌空气电池的有效电催化剂

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摘要

Ionic liquid (IL) modified reduced graphene oxide (rGO-IL) nanosheets anchoring manganese oxide (Mn3O4) are synthesized via a facile solution-based growth mechanism and applied to a Zn-air battery as an effective electrocatalyst for the oxygen reduction reaction (ORR). In this study, the IL moiety in these composites increases not only the conductivity of the system, but also the electrocatalytic activity compared to pristine rGO, together with the synergic effect of facilitating the ORR with the intrinsic catalytic activity of Mn3O4. Based on the Koutecky-Levich plot, we suggest that the ORR pathway of these composites is tunable with the relative amount of Mn3O4 nanoparticles supported onto the graphene sheets; for example, the ORR mechanism of the system with a lower Mn3O4 (19.2%) nanoparticle content is similar to a Pt/C electrode, i.e., a one-step, quasi-4-electron transfer, unlike that with a higher Mn3O4 (52.5%) content, which undergoes a classical two-step, 2-electron pathway. We also demonstrate the potential of these hybrid rGO-IL/Mn3O4 nanoparticles as efficient catalysts for the ORR in the Zn-air battery with a maximum peak power density of 120 mW cm(-2); a higher performance than that from commercial cathode catalysts.
机译:离子液体(IL)修饰的还原氧化石墨烯(rGO-IL)纳米片锚固氧化锰(Mn3O4)是通过基于溶液的简单生长机理合成的,并作为有效的氧还原反应(ORR)电催化剂应用于Zn-空气电池)。在这项研究中,与原始rGO相比,这些复合材料中的IL部分不仅增加了系统的电导率,而且还提高了电催化活性,以及​​促进ORR和Mn3O4固有催化活性的协同作用。基于Koutecky-Levich图,我们建议这些复合材料的ORR途径可以通过负载在石墨烯片上的相对量的Mn3O4纳米颗粒进行调节。例如,具有较低Mn3O4(19.2%)纳米颗粒含量的系统的ORR机理与Pt / C电极相似,即一步法准4电子转移,与具有较高Mn3O4的系统不同(52.5 %)的含量,这经历了经典的两步2电子途径。我们还证明了这些杂化的rGO-IL / Mn3O4纳米颗粒作为锌空气电池中ORR的有效催化剂的潜力,最大峰值功率密度为120 mW cm(-2);比市售阴极催化剂具有更高的性能。

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