3D-Printed (CoCrFeMnNi)3O4@C-GR dual core–shell composites: Multilevel control and mechanisms of microwave absorption performance

IF 13.3 1区 工程技术 Q1 ENGINEERING, CHEMICAL Chemical Engineering Journal Pub Date : 2024-08-12 DOI:10.1016/j.cej.2024.154777
Tangming Yan, XiCong Ye, Enyi He, Qi Gao, Yuemei Wang, Yongsheng Ye, Haihua Wu
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Abstract

With the rapid development of modern electronic technology, there is an increasing demand for microwave-absorbing materials in various applications. These include reducing electromagnetic interference, enhancing communication quality, and ensuring stealth capabilities for military equipment. This study has developed a novel microwave-absorbing material, which is a composite system consisting of a high-entropy dual-core–shell (CoCrFeMnNi)O@C combined with graphene (GR), and is composed of polylactic acid (PLA) as the matrix. The material is prepared through a process involving high-temperature oxidation, carbonization to form the shell, and Powder extrusion molding techniques. The results demonstrate that when the dual-core–shell (CoCrFeMnNi)O@C microspheres are added at a loading of 20 wt%, and GR is added at 7 wt%, with a thickness of 2.22 mm, the composite material achieves a minimum reflection loss (RL) value of −51.36 dB and an effective absorption bandwidth (EAB) of 5.20 GHz. This excellent performance is attributed to the lattice distortion, a large number of oxygen vacancies, and abundant heterogeneous interfaces and conductive networks within the composites. These factors work together to stimulate multiple relaxation mechanisms, enhance the magnetic loss effect, and greatly improve the microwave absorption capability. The introduction of high-entropy microspheres effectively modulates the high conductivity of GR, further enhancing the comprehensive absorption performance of the material. This study not only offers a new strategy for designing and preparing high-performance microwave-absorbing materials but also establishes a valuable scientific foundation for materials research and application in related fields.
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三维打印(CoCrFeMnNi)3O4@C-GR双核壳复合材料:微波吸收性能的多级控制和机制
随着现代电子技术的飞速发展,各种应用领域对微波吸收材料的需求日益增长。这些应用包括减少电磁干扰、提高通信质量和确保军事装备的隐形能力。本研究开发了一种新型微波吸收材料,它是由高熵双核壳(CoCrFeMnNi)O@C 与石墨烯(GR)组成的复合体系,并以聚乳酸(PLA)为基体。该材料的制备过程包括高温氧化、碳化形成外壳以及粉末挤压成型技术。结果表明,当双核壳(CoCrFeMnNi)O@C 微球的添加量为 20 wt%,GR 的添加量为 7 wt%,厚度为 2.22 mm 时,复合材料的最小反射损耗 (RL) 值为 -51.36 dB,有效吸收带宽 (EAB) 为 5.20 GHz。这种优异的性能归功于复合材料内部的晶格畸变、大量氧空位以及丰富的异质界面和导电网络。这些因素共同作用,激发了多种弛豫机制,增强了磁损耗效应,并大大提高了微波吸收能力。高熵微球的引入有效调节了 GR 的高电导率,进一步提高了材料的综合吸收性能。这项研究不仅为设计和制备高性能微波吸收材料提供了新的策略,也为相关领域的材料研究和应用奠定了宝贵的科学基础。
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来源期刊
Chemical Engineering Journal
Chemical Engineering Journal 工程技术-工程:化工
CiteScore
21.70
自引率
9.30%
发文量
6781
审稿时长
2.4 months
期刊介绍: The Chemical Engineering Journal is an international research journal that invites contributions of original and novel fundamental research. It aims to provide an international platform for presenting original fundamental research, interpretative reviews, and discussions on new developments in chemical engineering. The journal welcomes papers that describe novel theory and its practical application, as well as those that demonstrate the transfer of techniques from other disciplines. It also welcomes reports on carefully conducted experimental work that is soundly interpreted. The main focus of the journal is on original and rigorous research results that have broad significance. The Catalysis section within the Chemical Engineering Journal focuses specifically on Experimental and Theoretical studies in the fields of heterogeneous catalysis, molecular catalysis, and biocatalysis. These studies have industrial impact on various sectors such as chemicals, energy, materials, foods, healthcare, and environmental protection.
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