Polyethylene assisted CNTs in-situ growth on Fe-Mn-O to boost the electrochemical and electrocatalytic performance

IF 8.6 2区 工程技术 Q1 ENERGY & FUELS
Ao Dong , Xu Hou , Xinyao Sun , Changchang Tian , Li Yin , Jing Huang , Tingting Cui , Enxian Yuan
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Abstract

Efficient reuse of plastic wastes is turning waste into treasure, and crucial to green and sustainable development. Herein, a flexible strategy was proposed to fabricate the composite of transition metal and carbon nanotubes (CNTs), i.e., polyethylene (PE) assisted CNTs in-situ growth on Fe-Mn-O. Mn-O and Fe-Mn-O was sequentially prepared via the coprecipitation method and impregnation method, and used for CNTs synthesis from PE via the thermo-catalytic process. It was found that PE facilitated CNTs in-situ growth on Fe-Mn-O, and CNTs yield was 456.1 mg/g, which was mostly in a hollow cylindrical structure with a heterogenous metal-particle. Based on the metal yarmulke structure, the in-situ growth of CNTs on Fe-Mn-O seemed to follow the tip growth mode. Compared with Fe-Mn-O, the in-situ growth of CNTs significantly improved the electrochemical and electrocatalytic performance. Fe-Mn-O/CNTs composite exhibited a specific capacitance of 135 F/g at 0.3 A/g in 1 M Na2SO4 electrolyte solution and an oxygen evolution reaction (OER) overpotential of 306 mV at 50 mA/cm2 in 1 M KOH electrolyte solution, which was 75 F/g higher and 59 mV lower than that of Fe-Mn-O (60 F/g and 365 mV), respectively. It was deduced that the in-situ growth of CNTs effectively reduced the electrochemical impedance and improved the charge transport, and thus promoted the electrochemical and electrocatalytic performance of Fe-Mn-based materials. This work may provide a new direction for the resource of plastic wastes and the preparation of advanced transition metal/CNTs composites in the energy conversion and storage application.

聚乙烯辅助 CNTs 在 Fe-Mn-O 上原位生长以提高电化学和电催化性能
塑料废弃物的高效再利用是变废为宝的关键,对绿色和可持续发展至关重要。本文提出了一种灵活的过渡金属与碳纳米管(CNTs)复合材料的制备策略,即聚乙烯(PE)辅助CNTs在Fe-Mn-O上原位生长。通过共沉淀法和浸渍法依次制备出 Mn-O 和 Fe-Mn-O,并通过热催化工艺从聚乙烯中合成 CNTs。研究发现,聚乙烯可促进 CNTs 在 Fe-Mn-O 上的原位生长,CNTs 产率为 456.1 mg/g,且多为异质金属颗粒的中空圆柱结构。基于金属的 "armulke "结构,CNTs 在 Fe-Mn-O 上的原位生长似乎遵循尖端生长模式。与 Fe-Mn-O 相比,原位生长的 CNT 显著提高了电化学和电催化性能。在 1 M Na2SO4 电解质溶液中,Fe-Mn-O/CNTs 复合材料在 0.3 A/g 条件下的比电容为 135 F/g;在 1 M KOH 电解质溶液中,50 mA/cm2 条件下的氧进化反应(OER)过电位为 306 mV,分别比 Fe-Mn-O 高 75 F/g 和低 59 mV(60 F/g 和 365 mV)。由此推断,原位生长 CNTs 有效降低了电化学阻抗,改善了电荷传输,从而促进了 Fe-Mn 基材料的电化学和电催化性能。这项研究为塑料废弃物的资源化和制备先进的过渡金属/CNTs 复合材料在能量转换和储存领域的应用提供了新的方向。
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来源期刊
Sustainable Materials and Technologies
Sustainable Materials and Technologies Energy-Renewable Energy, Sustainability and the Environment
CiteScore
13.40
自引率
4.20%
发文量
158
审稿时长
45 days
期刊介绍: Sustainable Materials and Technologies (SM&T), an international, cross-disciplinary, fully open access journal published by Elsevier, focuses on original full-length research articles and reviews. It covers applied or fundamental science of nano-, micro-, meso-, and macro-scale aspects of materials and technologies for sustainable development. SM&T gives special attention to contributions that bridge the knowledge gap between materials and system designs.
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