Wang Honghan, Xiao Xinyu, An Qingda, Xiao Zuoyi, Zhu Kairuo, Zhai Shangru, Dong Xiaoling, Xue Chuang, Wu Hongjing
Liaoning Key Lab of Lignocellulose Chemistry and BioMaterials, Liaoning Collaborative Innovation Center for Lignocellulosic Biorefinery, School of Light Industry and Chemical Engineering, Dalian Polytechnic University, Dalian, 116034, P. R. China.
School of Life Science and Biotechnology, Dalian University of Technology, Dalian, 116024, P. R. China.
Small. 2024 Aug;20(31):e2309773. doi: 10.1002/smll.202309773. Epub 2024 Mar 10.
An emerging carbothermal shock method is an ultra-convenient strategy for synthesizing high-entropy alloys (HEAs), in which the intelligent combination of carbon support and HEAs can be serve as a decisive factor for interpreting the trade-off relationship between conductive gene and dielectric gene. However, the feedback mechanism of HEAs ordering degree on electromagnetic (EM) response in 2-18 GHz has not been comprehensively demystified. Herein, while lignin-based carbon fiber paper (L-CFP) as carbon support, L-CFP/FeCoNiCuZn-X with is prepared by carbothermal shock method. The reflection loss of -82.6 dB with thickness of 1.31 mm is achieved by means of pointing electron enrichment within L-CFP/FeCoNiCuZn HEAs heterointerfaces verified by theoretical calculations. Simultaneously, low-frequency evolution with high-intensity and broadband EM response relies on a "sacrificing" strategy achieved by construction of polymorphic L-CFP/semi-disordered-HEAs heterointerfaces. The practicality of L-CFP/FeCoNiCuZn-X in complex environments is given prominence to thermal conductivity, hydrophobicity, and electrocatalytic property. This work is of great significance for insightful mechanism analysis of HEAs in the application of electromagnetic wave absorption.
一种新兴的碳热冲击法是合成高熵合金(HEAs)的超便捷策略,其中碳载体与高熵合金的智能组合可作为解释导电基因与介电基因之间权衡关系的决定性因素。然而,高熵合金在2 - 18 GHz频段内有序度对电磁(EM)响应的反馈机制尚未得到全面揭秘。在此,以木质素基碳纤维纸(L - CFP)作为碳载体,通过碳热冲击法制备了L - CFP/FeCoNiCuZn - X。通过理论计算验证,在L - CFP/FeCoNiCuZn高熵合金异质界面内实现电子富集,从而实现了厚度为1.31 mm时-82.6 dB的反射损耗。同时,高强度和宽带电磁响应的低频演化依赖于通过构建多晶型L - CFP/半无序高熵合金异质界面实现的“牺牲”策略。L - CFP/FeCoNiCuZn - X在复杂环境中的实用性体现在热导率、疏水性和电催化性能方面。这项工作对于深入分析高熵合金在电磁波吸收应用中的机理具有重要意义。