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Flocculant-Assisted Synthesis of Graphene-Like Carbon Nanosheets for Oxygen Reduction Reaction and Supercapacitor

机译:絮凝剂辅助合成石墨烯碳纳米片,用于氧还原反应和超级电容器

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摘要

The rational treatment of hazardous textile sludge is critical and challenging for the environment and a sustainable future. Here, a water-soluble chitosan derivative was synthesized and used as an effective flocculant in removal of reactive dye from aqueous solution. Employing these chitosan-containing textile sludges as precursors, graphene-like carbon nanosheets were synthesized through simple one-step carbonization with the use of Fe (III) salt as graphitization catalyst. It was found that the resultant graphene-like carbon nanosheets material at thickness near 3.2 nm (NSC-Fe-2) showed a high graphitization degree, high specific surface area, and excellent bifunctional electrochemical performance. As-prepared NSC-Fe-2 catalyst exhibited excellent oxygen reduction reaction (ORR) activity (onset potential 1.05 V) and a much better methanol tolerance than that of commercial Pt/C (onset potential 0.98 V) in an alkaline medium. Additionally, as electrode materials for supercapacitors, NSC-Fe-2 also displayed an outstanding specific capacitance of 195 F g−1 at 1 A g−1 and superior cycling stability (loss of 3.4% after 2500 cycles). The good electrochemical properties of the as-prepared NSC-Fe materials could be attributed to the ultrathin graphene-like nanosheets structure and synergistic effects from codoping of iron and nitrogen. This work develops a simple but effective strategy for direct conversion of textile sewage sludge to value-added graphene-like carbon, which is considered as a promising alternative to fulfill the requirements of environment and energy.
机译:危险纺织污泥的合理治疗对于环境和可持续的未来至关重要和挑战。这里,合成水溶性壳聚糖衍生物并用作从水溶液中除去反应性染料的有效絮凝剂。使用这些含壳聚糖的纺织品污泥作为前体,通过使用Fe(III)盐作为石墨化催化剂,通过简单的一步碳化合成石墨烯样碳纳米片。结果发现,厚度近3.2nm(NSC-Fe-2)的所得石墨烯碳纳米晶片材料显示出高图石墨化程度,高比表面积和优异的双官能电化学性能。所制备的NSC-的Fe-2催化剂在碱性介质中表现出优异的氧还原反应(ORR)活性(开始电位1.05 V)和更好的甲醇公差比市售的Pt / C(开始电位为0.98V)的。此外,作为超级电容器的电极材料,NSC-Fe-2也显示出195V-1的出色特定电容,1A的G-1和优异的循环稳定性(2500次循环后的3.4%的损失)。由制备的NC-Fe材料的良好电化学性质可归因于超薄石墨烯样纳米晶片结构和来自铁和氮的协同作用。这项工作开发了一种简单但有效的策略,可将纺织品污水污泥直接转化为增值的石墨烯样碳,这被认为是满足环境和能源要求的有希望的替代方案。

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