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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Designing N-doped carbon nanotubes and Fe-Fe3C nanostructures co-embedded in B-doped mesoporous carbon as an enduring cathode electrocatalyst for metal-air batteries
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Designing N-doped carbon nanotubes and Fe-Fe3C nanostructures co-embedded in B-doped mesoporous carbon as an enduring cathode electrocatalyst for metal-air batteries

机译:设计N掺杂的碳纳米管和Fe-Fe3C纳米结构,将B掺杂的介孔碳共嵌入B掺杂的介孔碳中,作为金属电池的持久性阴极电催化剂

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摘要

Oxygen reduction and evolution reactions are of immense importance in electrochemical conversion/ storage devices like regenerative/alcohol/hydrogen based fuel cells and metal-air batteries. Here, a rational facile synthesis methodology has been developed to design N-doped carbon nanotubes (N-CNTs) and Fe-Fe3C nanostructures co-embedded in B-doped mesoporous carbon nanostructures (BFNCNTs) as a noble metal-free superior bi-functional electrocatalyst for oxygen evolution/reduction reactions. The incorporation of N and B with negligible/undetectable B-N formation and Fe-Fe3C nanostructures leads to the superior performance by introducing plenty of defects, local heterogeneity and a high specific surface area (similar to 272 m(2) g(-1)). Besides, mesoporous boron-doped carbon acts as a host material for NCNTs and Fe-Fe3C, and it offers good connectivity as well as a protective coating for durable catalysis. Remarkably, more positive onset (-30 mV) and half-wave potentials (-225 mV) with -94% current retention under accelerated stability test and fuel tolerance for the ORR, in combination with lower onset (422 mV) and E-j=10(OER) (562 mV) potentials with high current density (190 mA cm(-2) @ 0.8 V vs. Ag/AgCl) for the OER as compared to commercial state-of-the-art electrocatalysts suggest superior bifunctional behavior of BFNCNTs. The complete oxygen electrochemical activity Delta E = E-j(OER)=10 = E-1/2(ORR) = 0.788 V for BFNCNTs is lower than recently reported various state-of-the-art bifunctional catalysts. Besides, a prototype battery fabrication using BFNCNTs as the cathode electrode for driving a light emitting diode has been demonstrated. Overall, BFNCNTs have potential to serve as a non-precious electrocatalyst for electrochemical energy devices.
机译:氧还原和进化反应是极为重要的一样基于再生/醇/氢燃料电池和金属 - 空气电池的电化学转换/存储设备。在这里,一个合理的简便合成方法已被开发来设计的N-掺杂的碳纳米管(N-CNT)的和Fe-的Fe3C纳米结构共嵌入B掺杂的中孔碳的纳米结构(BFNCNTs)作为贵金属 - 自由优于双官能电析氧/还原反应。 N和乙具有可忽略/不可检测的BN形成和Fe-的Fe3C的掺入通过引入大量缺陷,局部异质性和高比表面积纳米结构导致的卓越性能(类似于272米(2)克(-1)) 。此外,中孔掺杂硼的碳充当NCNTs和Fe-的Fe3C的主体材料,它提供了良好的连接,以及用于耐用催化的保护涂层。值得注意的是,更积极的发病(-30毫伏)和半波电位(-225毫伏)用下加速稳定性试验和用于ORR燃料耐受性,在组合-94%的电流保留具有较低发病(422毫伏)和EJ = 10 (OER)(562毫伏)的电位与高电流密度(190毫安厘米(-2)@ 0.8V,相对于Ag / AgCl电极)为OER相比于国家的最先进的商业电催化剂建议BFNCNTs的优越双功能行为。完整的氧的电化学活性的ΔE= E-J(OER)= 10 = E-1/2(ORR)= 0.788 V代表BFNCNTs比最近报道状态的最先进的各种双官能催化剂更低。此外,使用BFNCNTs作为用于驱动发光二极管的阴极电极的原型电池制造已被证明。总体而言,BFNCNTs有潜力成为一个不贵的电用于电化学能源装置。

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