Yang Xia, Ming-Xuan Wu, Jun-Tong Huang, Ruo Huang, Dong-Hai Ding, Jie Yin, Chang-Ming Xu, Huiyong Yang, Qi-Fa Wan, L. Z. Wang, Bing-Liang Liang, Zi-Cui Lu, Rui-Ying Luo
Multilayer Boron nitride nanosheets (BNNS) are promising two-dimensional structure-function enhancers due to their structural and mechanical similarity to multilayer graphene (MLG). However, challenges in scalable synthesis/preparation techniques and effective interfacial integration approaches of BNNS have limited their application in ceramic-matrix composites. Herein, we reported the cost-effective, large-scale production of high-quality MBNS via three-roll milling, and their incorporation into a dual-phase SiC matrix through a tailored interfacial modification strategy. This MBNS-dominated microstructures activated multiple synergistical toughening mechanisms, yielding a ~95% increase in flexural strength and ~50% enhancement in fracture toughness. Additionally, the composite exhibited excellent electromagnetic absorption performance, achieving a minimum reflection loss (RLmin) of −52.59 dB at 1.22 mm and a maximum effective absorption bandwidth (EABmax) of full Ku-band coverage (5.6 GHz) at 1.09 mm thickness. This work presents a scalable strategy for the fabrication of high-performance, structurally and functionally integrated composites, offering significant potential for advanced structural and electromagnetic applications.