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Amorphous Carbon Chips Li-Ion Battery Anodes Produced through Polyethylene Waste Upcycling

机译:通过聚乙烯废料再生产生的非晶碳芯片锂离子电池阳极

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Remediation process produces high-value functional material from low-cost or valueless waste feedstock. Current research demonstrates an innovative solvothermal approach to effectively react sulfuric acid on polyethylene (PE) chains, modifying the PE at a moderate temperature. In this process, the polymer undergoes a cross-linking step above 120 °C, whereas above 500 °C, it transforms into turbostratic carbon structures. Scanning electron micrographs confirmed the free-standing carbon sheet architecture. Raman spectroscopy and X-ray diffraction verified the amorphous/disordered sp2/sp3 hybrid carbon structure in the produced carbons. A high Brunauer–Emmett–Teller surface area of 752.3 and 673.5 m2/g for low-density PE-derived carbon (LDPE-C) and high-density PE-derived carbon (HDPE-C), respectively, was recorded. Thermogravimetric analysis analysis established a total mass retention of 50 and 46% for LDPE and HDPE, respectively, from sulfonated materials. Li-ion battery composite anode comprising LDPE-C and HDPE-C, with a binder and a carbon additive (vs lithium), produced 230 and 350 mA h/g specific capacities for LDPE-C and HDPE-C, respectively, when cycled at room temperature at C/5 rate. Elevated temperature (50 °C) battery cycling produced 290 and 440 mA h/g specific capacities for LDPE-C and HDPE-C, respectively, at C/5 rate. On the basis of the literature survey, this is the first report, which demonstrates that a solvothermal sulfonation process followed by thermal treatment successfully converts waste LDPE and HDPE plastic bags to functional energy-storing carbons.
机译:修复过程从低成本或无价的废料中产生高价值的功能材料。当前的研究表明了一种创新的溶剂热方法,可以有效地使硫酸在聚乙烯(PE)链上反应,并在中等温度下对PE进行改性。在此过程中,聚合物在高于120°C的温度下经历交联步骤,而在高于500°C的温度下,它转变为涡轮层碳结构。扫描电子显微照片证实了独立式碳片结构。拉曼光谱和X射线衍射验证了所产生的碳中的无定形/无序sp2 / sp3杂化碳结构。记录低密度PE衍生碳(LDPE-C)和高密度PE衍生碳(HDPE-C)的高Brunauer-Emmett-Teller表面积分别为752.3和673.5 m2 / g。热重分析分析确定了磺化材料的LDPE和HDPE的总质量保留率分别为50%和46%。包含LDPE-C和HDPE-C以及粘合剂和碳添加剂(相对于锂)的锂离子电池复合阳极,在循环时分别产生了230和350 mA h / g的比电容在室温下以C / 5的速率高温(50°C)电池循环以C / 5速率分别产生LDPE-C和HDPE-C的比容量290和440 mA h / g。根据文献调查,这是第一份报告,它表明溶剂热磺化工艺及其后的热处理成功地将废弃的LDPE和HDPE塑料袋转化为功能性储能碳。

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