首页>
美国卫生研究院文献>Advanced Science
>Enhancing Interface Connectivity for Multifunctional Magnetic Carbon Aerogels: An In Situ Growth Strategy of Metal‐Organic Frameworks on Cellulose Nanofibrils
【2h】
Enhancing Interface Connectivity for Multifunctional Magnetic Carbon Aerogels: An In Situ Growth Strategy of Metal‐Organic Frameworks on Cellulose Nanofibrils
Improving interface connectivity of magnetic nanoparticles in carbon aerogels is crucial, yet challenging for assembling lightweight, elastic, high‐performance, and multifunctional carbon architectures. Here, an in situ growth strategy to achieve high dispersion of metal–organic frameworks (MOFs)‐anchored cellulose nanofibrils to enhance the interface connection quality is proposed. Followed by a facile freeze‐casting and carbonization treatment, sustainable biomimetic porous carbon aerogels with highly dispersed and closely connected MOF‐derived magnetic nano‐capsules are fabricated. Thanks to the tight interface bonding of nano‐capsule microstructure, these aerogels showcase remarkable mechanical robustness and flexibility, tunable electrical conductivity and magnetization intensity, and excellent electromagnetic wave absorption performance. Achieving a reflection loss of −70.8 dB and a broadened effective absorption bandwidth of 6.0 GHz at a filling fraction of merely 2.2 wt.%, leading to a specific reflection loss of −1450 dB mm−1, surpassing all carbon‐based aerogel absorbers so far reported. Meanwhile, the aerogel manifests high magnetic sensing sensibility and excellent thermal insulation. This work provides an extendable in situ growth strategy for synthesizing MOF‐modified cellulose nanofibril structures, thereby promoting the development of high‐value‐added multifunctional magnetic carbon aerogels for applications in electromagnetic compatibility and protection, thermal management, diversified sensing, Internet of Things devices, and aerospace.
展开▼
机译:改善碳气凝胶中磁性纳米颗粒的界面连接性至关重要,但对于组装轻质、弹性、高性能和多功能的碳结构来说却具有挑战性。在这里,提出了一种原位生长策略,以实现金属有机框架 (MOF) 锚定的纤维素纳米原纤维的高分散性,以提高界面连接质量。随后进行简单的冷冻铸造和碳化处理,制造了具有高度分散和紧密连接的 MOF 衍生磁性纳米胶囊的可持续仿生多孔碳气凝胶。由于纳米胶囊微观结构的紧密界面键合,这些气凝胶表现出卓越的机械强度和柔韧性、可调的导电性和磁化强度以及出色的电磁波吸收性能。在仅 2.2 wt.% 的填充分数下实现了 -70.8 dB 的反射损耗和 6.0 GHz 的拓宽有效吸收带宽,导致比反射损耗为 -1450 dB mm-1,超过了迄今为止报道的所有碳基气凝胶吸收材料。同时,气凝胶表现出高磁传感灵敏度和出色的隔热性。这项工作为合成 MOF 修饰的纤维素纳米原纤维结构提供了一种可扩展的原位生长策略,从而促进了高附加值多功能磁性碳气凝胶的发展,用于电磁兼容和保护、热管理、多元化传感、物联网设备和航空航天等领域。
展开▼