Nanoscience and Nanotechnology Centre, Department of Chemistry, D.S.B. Campus, Kumaun University, Nainital 263001, Uttarakhand, India.
Atal Bihari Vajpayee Indian Institute of Information Technology and Management, Gwalior 474015, Madhya Pradesh, India.
Waste Manag. 2019 Apr 1;88:48-55. doi: 10.1016/j.wasman.2019.03.023. Epub 2019 Mar 19.
Waste plastic management and converting it into value added products is one of the greatest challenges before the scientific community. The present work reports a cost effective, environment friendly and mass production capable method for upcycling of solid plastic waste into value added product (graphene). A two step pyrolysis processes i.e. firstly at 400 °C in presence of nanoclay followed by at 750 °C under nitrogen atmosphere was performed to obtain a black charged residue. Raman spectroscopy was performed on the obtained residue, where the observed D and G bands at 1342 cm and 1594 cm, respectively, confirm the synthesis of graphene nano sheets. In addition, a broad 2D band at 2790 cm confirm the presence of few layer graphene nano sheets. The obtained graphene nanosheets were also confirmed through the computational data by Gaussian09, where the peaks at 1379 cm and 1596 cm for D and G band, respectively, make a good agreement with experimental data. TEM, FT-IR and EDX spectroscopy were also performed to confirm the synthesis of graphene nanosheets including the functional group identification and quantitative analysis for elements, respectively.
废塑料管理并将其转化为增值产品是科学界面临的最大挑战之一。本工作报道了一种经济高效、环境友好且可大规模生产的方法,用于将固体废塑料升级为增值产品(石墨烯)。采用两步热解工艺,即在纳米粘土存在下首先在 400°C 下,然后在氮气气氛下在 750°C 下进行,以获得黑色带电残余物。对获得的残留物进行拉曼光谱分析,在该处观察到的分别在 1342 cm 和 1594 cm 处的 D 和 G 带证实了石墨烯纳米片的合成。此外,在 2790 cm 处的宽 2D 带证实了存在少层石墨烯纳米片。还通过 Gaussian09 的计算数据证实了所获得的石墨烯纳米片的存在,其中 D 和 G 带的峰分别在 1379 cm 和 1596 cm 处,与实验数据吻合良好。还进行了 TEM、FT-IR 和 EDX 光谱分析,以分别确认石墨烯纳米片的合成、官能团鉴定和元素定量分析。