物理化学学报 >> 2026, Vol. 42 >> Issue (11): 100345.doi: 10.1016/j.actphy.2026.100345

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MoS2调控TiO2/C形成介电损耗主导的绣球花结构用于电磁波吸收

胡玉鹏1, 董赛佳1, 周腾1, 马东威2, 张道海1, 夏华森1, 司元靖1, 宋安敏1, 徐国敏1   

  1. 1 贵州民族大学化学工程学院, 贵州贵阳 550025;
    2 湖北汽车工业学院汽车材料学院, 湖北十堰 442002
  • 收稿日期:2026-04-12 修回日期:2026-06-07 录用日期:2026-06-09 发布日期:2026-09-29
  • 通讯作者: 张道海, 宋安敏, 徐国敏 E-mail:zhangdaohai6235@163.com;songanmin0919@163.com;410034801@qq.com
  • 基金资助:
    本研究由国家自然科学基金项目(52163001);贵州省科技计划项目(黔科合平台人才-GCC[2022]010–2);中央引导地方科技发展专项资金(黔科合中引地[2024]042、黔科合中引地[2025]013、黔科合人才XKBF[2025]005);贵州民族大学博士启动基金项目(GZMUZK[2024]QD77);贵州省科学家工作站(黔科合平台KXJZ[2024]022);贵州省教育厅“百校千企科技攻关揭榜挂帅”(黔教技[2025]007号);大学生创新创业训练计划项目(202510672646)共同资助。

MoS2-modulated TiO2/C hydrangea structures for electromagnetic wave absorption via dielectric loss dominances

Yupeng Hu1, Saijia Dong1, Teng Zhou1, Dongwei Ma2, Daohai Zhang1, Huasen Xia1, Yuanjing Si1, Anmin Song1, Guomin Xu1   

  1. 1 School of Chemical Engineering, Guizhou Minzu University, Guiyang 550025, Guizhou Province, China;
    2 School of Automotive Materials, Hubei University of Automotive Technology, Shiyan 442002, Hubei Province, China
  • Received:2026-04-12 Revised:2026-06-07 Accepted:2026-06-09 Published:2026-09-29
  • Contact: Daohai Zhang, Anmin Song, Guomin Xu E-mail:zhangdaohai6235@163.com;songanmin0919@163.com;410034801@qq.com

摘要: 对于非磁性MOF(金属有机框架)衍生物而言,当前研究的核心挑战在于如何在不引入磁性组分的前提下,通过精确调控材料微观形貌与介电常数来克服阻抗失配并提升吸波性能。引入具有半导体特性与层状结构的二维材料MoS2可显著增强此类材料的吸收性能。本工作通过在Ti-MOFs上原位生长不同负载量的MoS2,设计出具有绣球花形貌的新型Ti-MOF衍生物吸波材料(TiO2/C@MoS2)以解决上述问题。具体而言,TiO2/C@MoS2复合材料TM72在2.05 mm厚度时实现-62.1 dB的最小反射损耗(RLmin),最大有效吸收带宽(EABmax)达5.88 GHz (对应厚度2.18 mm),雷达散射截面(RCS)减缩值为16.6 dB m2;TM71则在匹配厚度2.47 mm时RLmin为-52.82 dB,对应匹配厚度2.28 mm的EABmax达6.93 GHz,同时实现17.95 dB m2的雷达散射截面(RCS)减缩。这使得TiO2/C@MoS2能够满足电磁波吸收材料(EMWAMs)“强、宽、薄、轻”的关键需求。此外,RCS模拟验证了该复合材料的实际适用性。因此,本研究为构建具有超薄结构、优异吸收性能与宽频吸收能力的下一代EMWAMs提供了创新策略。

关键词: 核壳结构, 电磁波吸收, 阻抗匹配, 二硫化钼(MoS2), MOFs衍生物

Abstract: For non-magnetic metal-organic framework (MOF) derivatives, the core challenge in current research is how to overcome impedance mismatch and enhance microwave absorption performance through precise control of the material’s micro-morphology and dielectric properties without introducing magnetic components. The incorporation of MoS2, a two-dimensional material with semiconductor properties and a layered structure, can significantly enhance the absorptive performance of such materials. In this work, a novel Ti-MOF derivative absorber material (TiO2/C@MoS2) with hydrangea-like morphology is proposed by in situ growing MoS2 with varying loadings on Ti-MOFs to overcome the aforementioned challenges. Specifically, the TiO2/C@MoS2 composite material TM72 achieves a minimum reflection loss (RLmin) of -62.1 dB at a thickness of 2.05 mm, a maximum effective absorption bandwidth (EABmax) of 5.88 GHz (corresponding to a thickness of 2.18 mm), and a radar cross-section (RCS) reduction of 16.6 dB m2. For TM71, the RLmin is -52.82 dB at a matching thickness of 2.47 mm, with an EABmax of 6.93 GHz corresponding to a matching thickness of 2.28 mm, and it also achieves a radar cross-section (RCS) reduction of 17.95 dB m2. This enables TiO2/C@MoS2 to fulfill the critical demands of electromagnetic wave absorbing materials (EMWAMs): “strong, broad, thin, and lightweight”. Furthermore, RCS simulations validate the actual applicability of this composite material. Consequently, this effort provides an innovative strategy for constructing next-generation EMWAMs featuring ultrathin structures, outstanding absorption performance, and broadband absorption capabilities.

Key words: Core-shell structure, Electromagnetic wave absorption, Impedance matching, Molybdenum disulfide (MoS2), MOFs derivatives