Xu Honglei, Wang Yongpeng, Liu Mengzhu, Zhai Yuqi
College of Materials Science and Engineering, Jilin Institute of Chemical Technology, Jilin 132022, China.
Carbon Fiber Research Institute, Jilin Institute of Chemical Technology, Jilin 132022, China.
ACS Appl Mater Interfaces. 2025 Aug 20;17(33):47679-47695. doi: 10.1021/acsami.5c09658. Epub 2025 Aug 7.
MXene-based wave-absorbing materials face challenges in practical applications such as severe sheet stacking and low dielectric loss. Herein, we used two-dimensional (2D) layered TiCT MXene as the backbone and stereoscopic magnetic cobalt (Co) crystals as the buttress and coating to design a connected three-dimensional layered sandwich heterostructure. By adjustment of the ratio of raw materials, Co crystals were anchored both within the interlayer gaps of the adjacent 2D sheets and on their surfaces through electrostatic and ion-dipole interactions with the functional groups of TiCT. This prevented magnetic and sheet agglomeration and formed a uniform frosting-like coating on the surface. Owing to this unique structure and multicomponent design, the TiCT/Co composites were enriched with nonhomogeneous interfacial structures and magnetic/dielectric synergy. They exhibited excellent impedance matching properties with multiple electromagnetic wave absorption (EWA) mechanisms. After optimization, the Co-modified TiCT composite exhibited a minimum reflection loss (RL) of -49.57 dB at a thickness of 2.5 mm with an effective absorption bandwidth of 2.88 GHz, surpassing most previously reported MXene-based EWA materials. The simulated far-field radar-scattering cross-section (RCS) results further indicated that the TiCT/Co composite consistently maintained an RCS value of <-15 dB m across all test angles, highlighting its superior EWA capability. The TiCT/Co composite exhibited a relatively low infrared emissivity and an excellent infrared stealth performance. This study provides a new route for fabricating MXene-based EWA composite materials with enhanced versatility and effectiveness.
基于MXene的吸波材料在实际应用中面临诸如严重的片层堆叠和低介电损耗等挑战。在此,我们以二维(2D)层状TiCT MXene为骨架,以立体磁性钴(Co)晶体为支撑和涂层,设计了一种连通的三维层状夹心异质结构。通过调整原料比例,Co晶体通过与TiCT官能团的静电和离子偶极相互作用,既锚定在相邻2D片层的层间间隙内,也锚定在其表面。这防止了磁性和片层团聚,并在表面形成了均匀的霜状涂层。由于这种独特的结构和多组分设计,TiCT/Co复合材料富含非均匀界面结构和磁/介电协同效应。它们表现出具有多种电磁波吸收(EWA)机制的优异阻抗匹配特性。经过优化,Co改性的TiCT复合材料在厚度为2.5 mm时表现出-49.57 dB的最小反射损耗(RL),有效吸收带宽为2.88 GHz,超过了大多数先前报道的基于MXene的EWA材料。模拟的远场雷达散射截面(RCS)结果进一步表明,TiCT/Co复合材料在所有测试角度下始终保持RCS值<-15 dB m,突出了其卓越的EWA能力。TiCT/Co复合材料表现出相对较低的红外发射率和优异的红外隐身性能。本研究为制备具有更高通用性和有效性的基于MXene的EWA复合材料提供了一条新途径。