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Pine cone mold: a toolbox for fabricating unique metal/carbon nanohybrid electrocatalysts

机译:松果模具:制作独特的工具箱金属/碳nanohybrid electrocatalysts

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摘要

Nature presents delicate and complex materials systems beyond those fathomable by humans, and therefore, extensive effort has been made to utilize or mimic bio-materials and bio-systems in various fields. Biomass, an inexhaustible natural materials source, can also present good opportunities for the development of unprecedented, advanced materials and processing systems. Herein, we demonstrate the use of pine cones as a biomass mold for creating new and useful metal/carbon nanohybrids (MCNHs). The inherent water-induced folding actuation of the cone scales allows the casting of an aqueous solution of a single metal precursor or a binary metal mixture into the cone mold by simply immersing the cone in the solution. The cone actively absorbs aqueous-phase metal precursors through the bract scales and the precursor ions introduced into the cone are anchored to the functional groups of the interior tissues of the cone. Subsequent heat treatment successfully led to the formation of unique MCNHs. Iron, manganese, and cobalt were employed as model metals, binary mixtures of which were also cast into the cone mold to create further versatile MCNHs. Nanoparticulate metals were formed on the carbon supports, where the size, size distribution, and crystallinity of the nanoparticles were highly dependent on the identity of the single-component precursor and the combination of precursors. Consequently, the electrochemical activity of the MCNHs also depended on which metal precursors were cast into the cone mold. The MCNH prepared from the mixture of iron and manganese precursors (MFeMnCNH) showed the best electrochemical activity. As model applications, MFeMnCNH was applied to electrode materials for electrochemical charge storage and the oxygen evolution reaction. An electrochemical capacitor cell based on the MFeMnCNH electrodes showed excellent performance with energy densities of 38.7-54.2 W h kg(-1) at power densities of 16 000-160 kW kg(-1). In addition, MFeMnCNH demonstrated a low overpotential of 464 mV and fast kinetics with a Tafel slope of 64.6 mV dec(-1) as an electrocatalyst for the oxygen evolution reaction in 1.0 M KOH. These results substantiate that pine cones as a biomass mold show great promise for creating versatile MCNHs through further combination of various precursors.
机译:自然会出现微妙和复杂的材料系统除了那些由人类看得透的,因此,广泛的努力已经取得了利用或模拟生物材料和就近各领域。材料来源,也可以写出好的发展的机会前所未有的、先进的材料和加工系统。锥作为生物质用于创建新的模具有用的金属/碳nanohybrids (MCNHs)。固有water-induced折叠的冲动水的锥尺度允许铸造解决方案的一个金属前体或二进制金属混合物倒入锥形模简单沉浸的锥的解决方案。积极吸收水相金属前体通过苞鳞和前体离子引入锥形锚定到官能团的内部组织锥。形成独特的MCNHs。锰,钴被雇佣为模型金属二元混合物的也锥形模具进一步创建通用的MCNHs。碳支持,大小,尺寸分布和结晶度纳米粒子是高度依赖单组分前身的身份前体的结合。电化学活动MCNHs也取决于金属前体被抛锥形模具。铁和锰的前体(MFeMnCNH)显示最好的电化学活性。模型应用,MFeMnCNH应用电极材料的电化学存储和氧气反应进化。电化学电容器单元的基础上MFeMnCNH电极表现出良好的性能能量密度为38.7 W h公斤-54.2 (1)000 - 160千瓦功率密度16公斤(1)。此外,MFeMnCNH表现出低464 mV和快速动力学的过电压塔菲尔斜率为64.6 mV 12月(1)作为一个electrocatalyst进化反应的氧气KOH在1.0米。松果作为生物质模具展示伟大的承诺创建通用的MCNHs进一步通过结合各种前兆。

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