首页> 外文期刊>ACS Central Science >Egg-Box Structure in Cobalt Alginate: A New Approach to Multifunctional Hierarchical Mesoporous N-Doped Carbon Nanofibers for Efficient Catalysis and Energy Storage
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Egg-Box Structure in Cobalt Alginate: A New Approach to Multifunctional Hierarchical Mesoporous N-Doped Carbon Nanofibers for Efficient Catalysis and Energy Storage

机译:海藻酸钴中的蛋盒结构:多功能分层介孔N掺杂碳纳米纤维的新方法,可有效催化和储能

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Carbon nanomaterials with both doped heteroatom and porous structure represent a new class of carbon nanostructures for boosting electrochemical application, particularly sustainable electrochemical energy conversion and storage applications. We herein demonstrate a unique large-scale sustainable biomass conversion strategy for the synthesis of earth-abundant multifunctional carbon nanomaterials with well-defined doped heteroatom level and multimodal pores through pyrolyzing electrospinning renewable natural alginate. The key part for our chemical synthesis is that we found that the egg-box structure in cobalt alginate nanofiber can offer new opportunity to create large mesopores (~10–40 nm) on the surface of nitrogen-doped carbon nanofibers. The as-prepared hierarchical carbon nanofibers with three-dimensional pathway for electron and ion transport are conceptually new as high-performance multifunctional electrochemical materials for boosting the performance of oxygen reduction reaction (ORR), lithium ion batteries (LIBs), and supercapacitors (SCs). In particular, they show amazingly the same ORR activity as commercial Pt/C catalyst and much better long-term stability and methanol tolerance for ORR than Pt/C via a four-electron pathway in alkaline electrolyte. They also exhibit a large reversible capacity of 625 mAh g–1 at 1 A g–1, good rate capability, and excellent cycling performance for LIBs, making them among the best in all the reported carbon nanomaterials. They also represent highly efficient carbon nanomaterials for SCs with excellent capacitive behavior of 197 F g–1 at 1 A g–1 and superior stability. The present work highlights the importance of biomass-derived multifunctional mesoporous carbon nanomaterials in enhancing electrochemical catalysis and energy storage.
机译:具有掺杂的杂原子和多孔结构的碳纳米材料代表了用于促进电化学应用,特别是可持续的电化学能量转换和存储应用的新型碳纳米结构。我们在本文中展示了一种独特的大规模可持续生物质转化策略,用于通过热纺静电纺可再生天然藻酸盐来合成具有明确定义的杂原子级和多峰孔的地球丰富的多功能碳纳米材料。化学合成的关键部分是,我们发现藻酸钴纳米纤维中的卵盒结构可以提供新的机会在掺氮碳纳米纤维的表面上形成较大的中孔(约10–40 nm)。制备的具有三维途径的电子和离子传输的分层碳纳米纤维在概念上是新的,是高性能的多功能电化学材料,可提高氧还原反应(ORR),锂离子电池(LIB)和超级电容器(SCs)的性能。 )。特别是,它们显示出与市售Pt / C催化剂相同的ORR活性,并且通过碱性电解质中的四电子途径比Pt / C具有更好的ORR长期稳定性和甲醇耐受性。它们在1 A g-1时还具有625 mAh g-1的大可逆容量,良好的倍率能力和出色的LIB循环性能,使其成为所有已报道的碳纳米材料中最好的。它们还代表了用于SC的高效碳纳米材料,在1 A g–1时具有出色的197 F g–1的电容性能和出色的稳定性。本工作强调了生物质衍生的多功能介孔碳纳米材料在增强电化学催化和能量存储中的重要性。

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