School of Chemistry, Key Laboratory of Bio-inspired Smart Interfacial Science and Technology of Ministry of Education, Beihang University, Beijing, People's Republic of China.
Department of Prosthodontics, The First Clinical Division, Peking University School and Hospital of Stomatology, Beijing, People's Republic of China.
Nature. 2024 Oct;634(8036):1103-1110. doi: 10.1038/s41586-024-08067-8. Epub 2024 Oct 30.
Titanium carbide MXene flakes have promising applications in aerospace, flexible electronic devices and biomedicine owing to their superior mechanical properties and electrical conductivity and good photothermal conversion, biocompatibility and osteoinductivity. It is highly desired yet very challenging to assemble MXene flakes into macroscopic high-performance materials in a scalable manner. Here we demonstrate a scalable strategy to fabricate high-performance MXene films by roll-to-roll-assisted blade coating (RBC) integrated with sequential bridging, providing good photothermal conversion and osteogenesis efficiency under near-infrared irradiation. MXene flakes were first bridged with silk sericin by hydrogen bonding and then assembled into macroscopic films using a continuous RBC process, followed by ionic bridging to freeze their aligned structure. The resultant large-scale MXene films with strong interlayer interactions are highly aligned and densified, exhibiting high tensile strength (755 MPa), toughness (17.4 MJ m) and electromagnetic interference (EMI) shielding capacity (78,000 dB cm g), as well as good ambient stability, photothermal conversion and bone regeneration performance. The proposed strategy not only paves a feasible way for realizing the practical applications of MXene in the fields of flexible EMI shielding materials and bone tissue engineering but also provides an avenue for the high-performance and scalable assembly of other two-dimensional flakes.
碳化钛 MXene 薄片由于其优异的机械性能、导电性和良好的光热转换、生物相容性和骨诱导性,在航空航天、柔性电子设备和生物医学领域具有广阔的应用前景。以可扩展的方式将 MXene 薄片组装成宏观高性能材料是一项极具挑战性但非常有意义的工作。在这里,我们通过辊对辊辅助刮刀涂布(RBC)与顺序桥接相结合,展示了一种可扩展的策略来制造高性能 MXene 薄膜,在近红外照射下具有良好的光热转换和成骨效率。MXene 薄片首先通过氢键与丝胶素桥接,然后使用连续 RBC 工艺组装成宏观薄膜,随后进行离子桥接以冻结其取向结构。所得的具有强层间相互作用的大规模 MXene 薄膜高度取向和致密化,表现出高拉伸强度(755 MPa)、韧性(17.4 MJ m)和电磁干扰(EMI)屏蔽能力(78,000 dB cm g),以及良好的环境稳定性、光热转换和骨再生性能。所提出的策略不仅为实现 MXene 在柔性 EMI 屏蔽材料和骨组织工程领域的实际应用铺平了可行的道路,而且为其他二维薄片的高性能和可扩展组装提供了途径。