State Key Laboratory of Separation Membranes and Membrane Processes, School of Materials Science and Engineering, Tiangong University, Tianjin, 300387, China.
State Key Laboratory of Separation Membranes and Membrane Processes, School of Textile Science and Engineering, Tiangong University, Tianjin, 300387, China.
Adv Sci (Weinh). 2023 Jul;10(19):e2301170. doi: 10.1002/advs.202301170. Epub 2023 Apr 21.
Electromagnetic (EM) metamaterial is a composite material with EM stealth properties, which is constructed by artificially reverse engineering metal split resonance rings (SRR). However, the greatest limitation of EM metamaterials is that they can only stealth at a fixed and lower frequency of EM waves, and modern processing techniques still cannot meet the accuracy requirements to fabric nano-size structural unit. Nano-sized and even ultra-small SRR at molecular level are promising arrays to realize the ability of EM stealth function at a higher frequency, although it has proven challenging to synthesize long, straight, connected molecular SRR, and also difficult to arrange those molecular SRR into a strict array. Here, the study overcomes this challenge and demonstrates that the fabric of polypyrrole molecular SRR achieves an ultra-small inner diameter of 2.49 Å and realizes the arrays arrangement at molecular level. Furthermore, the study exploits the EM stealth function and verifies that such arrays of molecular SRR with 2.49 Å have the ability to reach high-performance EM stealth in the range of 10 -10 Hz. This design concept opens a pathway for developing new metamaterials with broadband EM wave stealth and also serves the wider range of new applications.
电磁超材料是一种具有电磁隐身特性的复合材料,它是通过人工逆向工程金属分裂谐振环(SRR)构建的。然而,电磁超材料最大的局限性在于,它们只能在固定的、较低频率的电磁波下实现隐身,并且现代加工技术仍然无法满足制造纳米尺寸结构单元的精度要求。纳米级甚至亚微米级的 SRR 在分子水平上是实现更高频率电磁隐身功能的有前途的阵列,尽管已经证明合成长而直的、连接的分子 SRR 具有挑战性,而且也难以将这些分子 SRR 排列成严格的阵列。在这里,研究克服了这一挑战,并证明了聚吡咯分子 SRR 的结构实现了超小的内径 2.49Å,并在分子水平上实现了排列。此外,该研究还利用了电磁隐身功能,并验证了这种具有 2.49Å 的分子 SRR 阵列在 10 -10 Hz 的范围内具有实现高性能电磁隐身的能力。这种设计理念为开发具有宽带电磁波隐身功能的新型超材料开辟了道路,也为更广泛的新应用提供了可能。