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首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Bread-making synthesis of hierarchically Co@C nanoarchitecture in heteroatom doped porous carbons for oxidative degradation of emerging contaminants
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Bread-making synthesis of hierarchically Co@C nanoarchitecture in heteroatom doped porous carbons for oxidative degradation of emerging contaminants

机译:掺杂掺杂多孔碳氧化污染物氧化降解的杂原CO @ C纳米建筑面包的合成

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摘要

Employing low-cost and abundant wheat flour, sodium bicarbonate, cysteine and cobalt nitrate as precursors, we for the first time present a facile one-pot pyrolysis strategy for homogeneous assembly of core-shell Co@C nanoparticles with nitrogen and sulfur into hierarchically porous carbons (Co-N-S-PCs). The samples are highly efficient for oxidative decomposition of p-hydroxybenzoic acid (HBA) and phenol. It was found that Co@C nanoparticles are crucial for the generation of singlet oxygen in advanced oxidation processes (AOPs), which works together with hydroxyl and sulfate radicals in efficient decomposition of HBA. Density functional theory (DFT) calculations disclose that electron transfer from metal Co to C shells greatly improves the Fermi level and chemical activity of the C atoms. The combination of Co-C interaction with N, S codoping further bring in catalytic active sites in the graphitic shells where the charge states of C atoms are increased. This template-free strategy is scalable to prepare highly efficient catalysts, including functional carbon materials modified with non-precious metal species or pure and well-dispersed porous core-shell nanoparticles for environmental or energy applications.
机译:使用低成本和丰富的小麦粉,碳酸氢钠,半胱氨酸和硝酸钴作为前体,我们首次出现核心 - 壳CO @ C纳米粒子的均匀组装具有氮气和硫的均匀组装成层状多孔碳(CO-NS-PC)。样品对羟基苯甲酸(HBA)和苯酚的氧化分解非常有效。发现CO @ C纳米颗粒对于在高级氧化方法(AOP)中的单次氧的产生至关重要,其与HBA有效分解的羟基和硫酸盐自由基一起使用。密度函数理论(DFT)计算公开了从金属Co至C壳的电子转移大大改善了C原子的费米水平和化学活性。与N,S编码的CO-C相互作用的组合进一步引起催化活性位点,其中C原子的电荷状态增加。这种无效的策略是可扩展的,以制备高效催化剂,包括用非贵金属物种或纯净和分散的多孔核 - 壳纳米粒子改性的功能碳材料用于环境或能源应用。

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