Wang Tao, Zhang Yachao, Li Bo, Hu Ying, Aabloo Alvo, Chang Longfei
Anhui Province Key Lab of Aerospace Structural Parts Forming Technology and Equipment, Hefei University of Technology, Hefei, Anhui 230009, People's Republic of China.
School of Mechanical Engineering, Xi'an Jiaotong University, Xi'an, Shaanxi 710049, People's Republic of China.
ACS Appl Mater Interfaces. 2024 Sep 25;16(38):51433-51446. doi: 10.1021/acsami.4c09884. Epub 2024 Sep 13.
The growing concern over low-frequency noise pollution resulting from global industrialization has posed substantial challenges in noise attenuation. However, conventional acoustic metamaterials, with fixed geometries, offer limited flexibility in the frequency range adjustment once constructed. This research unveiled the promising potential of ionic electroactive polymers, particularly ionic polymer-metal composites (IPMCs), as a superior candidate to design tunable acoustic metamaterial due to its bidirectional energy conversion capabilities. The previously perceived limitations of the IPMC, including slow reaction and high energy expenditure, owning to its inherent sluggish intermediary ionic mass transport process, were astutely leveraged to expedite the attenuation of low-frequency sound energy. Both our experimental and simulation results elucidated that the IPMC can generate voltage potentials in response to acoustic pressure at frequencies significantly higher than those previously established. In addition, the peak absorption frequency can be effectively shifted by up to 45.7% with the application of a 4 V voltage. By further integration with a microperforated panel (MPP) structure, the developed metamaterial absorbers can achieve complete sound absorption, which was continuously tunable under minimal voltage stimulation across a wide frequency spectrum. In addition, a microslit structure IPMC metamaterial absorber was designed to realize modulation of the perforation rate, and the absorption peak can be shifted by up to 79.2%. These findings signify a pioneering application of ionic intelligent materials and may pave the way for further innovations of tunable low-frequency acoustic structures, ultimately advancing the pragmatic deployment of both soft intelligent materials and acoustic metamaterials.
全球工业化导致的低频噪声污染问题日益受到关注,这给噪声衰减带来了巨大挑战。然而,传统的声学超材料具有固定的几何形状,一旦构建完成,在频率范围调整方面的灵活性有限。本研究揭示了离子电活性聚合物,特别是离子聚合物-金属复合材料(IPMC),作为设计可调谐声学超材料的卓越候选材料的潜力,这是由于其双向能量转换能力。IPMC先前被认为存在的局限性,包括反应缓慢和能量消耗高,这归因于其固有的缓慢的中间离子质量传输过程,被巧妙地利用来加速低频声能的衰减。我们的实验和模拟结果都表明,IPMC在远高于先前确定的频率下能够响应声压产生电压电势。此外,施加4V电压时,峰值吸收频率可有效移动高达45.7%。通过与微穿孔板(MPP)结构进一步集成,所开发的超材料吸声器可实现完全吸声,并且在宽频谱下的最小电压刺激下可连续调谐。此外,设计了一种微狭缝结构的IPMC超材料吸声器来实现穿孔率的调制,吸收峰可移动高达79.2%。这些发现标志着离子智能材料的开创性应用,并可能为可调谐低频声学结构的进一步创新铺平道路,最终推动软智能材料和声学超材料的实际应用。