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首页> 外文期刊>ACS Omega >Synergistically Enhanced Electrocatalytic Performance of an N-Doped Graphene Quantum Dot-Decorated 3D MoS2–Graphene Nanohybrid for Oxygen Reduction Reaction
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Synergistically Enhanced Electrocatalytic Performance of an N-Doped Graphene Quantum Dot-Decorated 3D MoS2–Graphene Nanohybrid for Oxygen Reduction Reaction

机译:N掺杂石墨烯量子点修饰的3D MoS 2 –石墨烯纳米杂化物协同增氧催化氧还原反应

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Nitrogen-doped graphene quantum dots (N-GQDs) were decorated on a three-dimensional (3D) MoS_(2)–reduced graphene oxide (rGO) framework via a facile hydrothermal method. The distribution of N-GQDs on the 3D MoS_(2)–rGO framework was confirmed using X-ray photoelectron spectroscopy, energy dispersive X-ray elemental mapping, and high-resolution transmission electron microscopy techniques. The resultant 3D nanohybrid was successfully demonstrated as an efficient electrocatalyst toward the oxygen reduction reaction (ORR) under alkaline conditions. The chemical interaction between the electroactive N-GQDs and MoS_(2)–rGO and the increased surface area and pore size of the N-GQDs/MoS_(2)–rGO nanohybrid synergistically improved the ORR onset potential to +0.81 V vs reversible hydrogen electrode (RHE). Moreover, the N-GQDs/MoS_(2)–rGO nanohybrid showed better ORR stability for up to 3000 cycles with negligible deviation in the half-wave potential (E _(1/2)). Most importantly, the N-GQDs/MoS_(2)–rGO nanohybrid exhibited a superior methanol tolerance ability even under a high concentration of methanol (3.0 M) in alkaline medium. Hence, the development of a low-cost metal-free graphene quantum dot-based 3D nanohybrid with high methanol tolerance may open up a novel strategy to design selective cathode electrocatalysts for direct methanol fuel cell applications.
机译:通过便捷的水热法,在三维(3D)MoS_(2)还原石墨烯氧化物(rGO)框架上装饰氮掺杂的石墨烯量子点(N-GQD)。 N-GQDs在3D MoS_(2)-rGO框架上的分布已通过X射线光电子能谱,能量色散X射线元素映射和高分辨率透射电子显微镜技术得到了证实。所得3D纳米杂化物已成功证明是在碱性条件下对氧还原反应(ORR)的有效电催化剂。电活性N-GQD和MoS_(2)–rGO之间的化学相互作用以及N-GQDs / MoS_(2)–rGO纳米杂化物的表面积和孔径增加,与可逆氢相比,将ORR起始电位协同提高至+0.81 V电极(RHE)。此外,N-GQDs / MoS_(2)–rGO纳米杂交体在长达3000个循环中显示出更好的ORR稳定性,而半波电势的偏差可忽略不计(E _(1/2))。最重要的是,即使在碱性介质中高浓度的甲醇(3.0 M)下,N-GQDs / MoS_(2)–rGO纳米杂化物也表现出优异的甲醇耐受能力。因此,具有高甲醇耐受性的低成本无金属石墨烯量子点基3D纳米杂化物的开发可能会为设计用于直接甲醇燃料电池应用的选择性阴极电催化剂开辟一种新策略。

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