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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >A bimetallic alloy anchored on biomass-derived porous N-doped carbon fibers as a self-supporting bifunctional oxygen electrocatalyst for flexible Zn-air batteries
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A bimetallic alloy anchored on biomass-derived porous N-doped carbon fibers as a self-supporting bifunctional oxygen electrocatalyst for flexible Zn-air batteries

机译:锚固在生物质衍生的多孔N掺杂碳纤维上的双金属合金,为柔性Zn空气电池的自支撑双官能氧气催化剂

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摘要

Rational design and construction of highly efficient and durable bifunctional non-noble metal electrocatalysts for reversible oxygen reduction (ORR) and evolution reactions (OER) are urgently required yet challenging for rechargeable Zn-air batteries. We develop here a facile and scalable "delignification-impregnation-carbonization" strategy to fabricate uniformly dispersed NiFe alloy nanoparticles anchored on bamboo stick-derived N-doped carbon fibers (NiFe@N-CFs) as an air cathode for flexible Zn-air batteries. Benefiting from the inherent cellulose fibers with abundant macroporous structures in the raw bamboo stick, the lignified carbon fibers possess an interconnected porous structure. In addition to having high electrical conductivity endowed by one-dimensional carbon fibers, this porous structure is favorable for exposure of more active surface sites for electrochemical reactions and fast mass transport. Moreover, the strong metal-support interaction between NiFe nanoparticles and N-doped carbon and their synergistic effect may also contribute to the catalytic performance. Consequently, the resultant electrocatalyst displays excellent catalytic activity and stability toward oxygen electrocatalysis with a remarkably small potential gap (Delta E) of 0.71 V between the half-wave potential (E-1/2) of the ORR and the potential at 10 mA cm(-2)(E-j=10) of the OER. When employed as a bifunctional air cathode in a liquid Zn-air battery, the NiFe@N-CF based device can achieve a peak power density of 102 mW cm(-2)and specific capacity of 729 mA h g(Zn)(-1)and can be steadily cycled for 150 h at 10 mA cm(-2), which is extraordinary. The NiFe@N-CFs can also be used as a self-supporting air cathode in a flexible quasi-solid-state Zn-air battery, showing high round-trip efficiency and mechanical stability. This work provides a new avenue for the development of energy-related devices by converting biomass into advanced electrodes.
机译:高效和耐用的双功能非贵金属电催化剂的合理设计和构建用于可逆氧还原(ORR)和演化反应(OER),但对可充电Zn-Air电池有挑战性。我们在这里开发了一个容易和可扩展的“脱果浸渍 - 碳化”策略,以制造均匀分散的NiFe合金纳米粒子,该纳米粒子锚定在竹粘源性的N掺杂的碳纤维(NIFE @ N-CFS)中作为柔性Zn-Air电池的空气阴极。从原始竹棒中具有丰富的大孔结构的固有纤维素纤维受益,番木纤维具有相互连接的多孔结构。除了具有一维碳纤维的高导电性之外,该多孔结构是有利于暴露更活跃的表面位点以进行电化学反应和快速批量传输。此外,NiFe纳米颗粒和N掺杂碳之间的强金属支持相互作用及其协同效应也可能有助于催化性能。因此,所得电催化剂将优异的催化活性和朝向氧电催化分解的稳定性显示出在ORR的半波电位(E-1/2)之间的0.71V的显着小的潜在间隙(Delta e)和10 mA cm的电位(-2)oer的(ej = 10)。当用作液体Zn空气电池中的双功能空气阴极时,基于NIFE @ N-CF的装置可以达到102mW cm(-2)的峰值功率密度和729 mA Hg(Zn)的特定容量( - 1 )并且可以在10 mA cm(-2)下稳定地循环150小时,这是非凡的。 NiFe @ N-CFS也可以用作柔性准固态Zn-Abile电池中的自支撑空气阴极,显示出高往返效率和机械稳定性。这项工作通过将生物量转换为先进电极,为能量相关设备开发了新的途径。

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