无机材料学报

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铋基金属有机框架衍生Bi/Bi2O3@C复合材料的结构调控及微波吸收性能

刘伟恒, 罗驹华, 焦颖芝, 戴子洋, 冯萌娜   

  1. 盐城工学院 材料科学与工程学院,盐城 224051
  • 收稿日期:2026-07-05 修回日期:2026-08-24
  • 通讯作者: 罗驹华, 教授. E-mail: ljh@ycit.edu.cn
  • 作者简介:刘伟恒(1999–), 男, 硕士研究生. E-mail: 1272395604@qq.com
  • 基金资助:
    国家自然科学基金(52173267, 52303353)

Structural Modulation and Microwave Absorption Performance of Bi-MOF-derived Bi/Bi2O3@C Composites

LIU Weiheng, LUO Juhua, JIAO Yingzhi, DAI Ziyang, FENG Mengna   

  1. School of Materials Science and Engineering, Yancheng Institute of Technology, Yancheng 224051, China
  • Received:2026-07-05 Revised:2026-08-24
  • Contact: LUO Juhua, professor. E-mail: ljh@ycit.edu.cn
  • About author:LIU Weiheng (1999–), male, Master candidate. E-mail: 1272395604@qq.com
  • Supported by:
    National Natural Science Foundation of China (52173267, 52303353)

摘要: 多相介电基元的原位构筑及界面极化行为调控, 是实现轻质碳基微波吸收材料强吸收与宽频带协同优化的重要策略。本研究以棒状铋基金属有机框架(MOF)为自牺牲前驱体, 通过可控碳化还原构建了Bi/Bi2O3@C复合吸收剂, 实现了半金属Bi、半导体Bi2O3与碳基质的原位耦合。碳化过程中, 有机配体衍生为连续碳相, 含铋组分经限域还原与原位相演化形成Bi/Bi2O3异质纳米单元, 并稳定嵌入棒状碳骨架中, 由此构建出多尺度异质界面和丰富的介电损耗中心。调节碳化温度可同步影响Bi2O3还原程度、碳相石墨化水平和界面极化响应, 从而协调导电损耗增强与阻抗失配之间的矛盾。在40%(质量分数)填充量下, 850 ℃碳化样品在4.50 mm匹配厚度下实现-39.25 dB的最小反射损耗, 表现出较强的反射损耗能力; 900 ℃碳化样品则在更薄的1.72 mm匹配厚度下获得5.36 GHz的有效吸收带宽, 体现出薄层宽频吸收优势。性能提升主要源于Bi/C和Bi2O3/C异质界面诱导的界面极化、缺陷碳引发的偶极极化以及适度碳网络贡献的电导损耗协同作用。雷达散射截面仿真进一步表明, 优化后的Bi/Bi2O3@C涂层能够有效抑制目标宏观电磁散射。本工作为铋基MOF衍生多相介电吸收剂的界面构筑与介电参数调控提供了新的设计思路。

关键词: 电磁波吸收, 铋基金属有机框架, 碳复合材料, 异质界面, 介电损耗

Abstract: In situ construction of multiphase dielectric units and regulation of interfacial polarization offer an effective strategy for simultaneously achieving strong absorption and broad bandwidth in lightweight carbon-based microwave absorbers. In this work, rod-like bismuth-based metal-organic frameworks (MOFs) were used as self-sacrificial precursors to fabricate Bi/Bi2O3@C composites through controlled carbonization and reduction, enabling the in situ integration of semimetallic Bi, semiconducting Bi2O3 and a carbon matrix. During carbonization, the organic ligands evolved into a continuous carbon phase, while the Bi-containing species underwent confined reduction and phase evolution to form Bi/Bi2O3 heterostructured nanounits embedded within the rod-like carbon framework, thereby generating multiscale heterointerfaces and abundant dielectric-loss sites. Varying the carbonization temperature simultaneously modulated the reduction degree of Bi2O3, the graphitic ordering of the carbon phase and the interfacial polarization response, thus balancing enhanced conductive loss against impedance mismatch. At a filler loading of 40 wt%, the sample carbonized at 850 ℃ exhibited a minimum reflection loss of -39.25 dB at a matching thickness of 4.50 mm, whereas the sample carbonized at 900 ℃ achieved an effective absorption bandwidth of 5.36 GHz at a reduced thickness of 1.72 mm, demonstrating a distinct thin-layer broadband absorption advantage. The enhanced microwave attenuation arose from the synergistic contributions of interfacial polarization at the Bi/C and Bi2O3/C heterointerfaces, dipolar polarization associated with defect-rich carbon, and conductive loss within the moderately developed carbon network. Radar cross-section simulations further demonstrated that the optimized Bi/Bi2O3@C coating effectively suppressed macroscopic electromagnetic scattering. This work provides a design strategy for engineering multiphase dielectric interfaces and electromagnetic parameters in Bi-MOF-derived microwave absorbers.

Key words: electromagnetic wave absorption, Bi-based metal-organic framework, carbon composite, heterointerface, dielectric loss

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