State Key Laboratory of Robotics and System (HIT) , Harbin 150080, P.R. China.
Condensed Matter Science and Technology Institute, Harbin Institute of Technology , Harbin 150080, China.
ACS Appl Mater Interfaces. 2016 Jul 20;8(28):18496-504. doi: 10.1021/acsami.6b06024. Epub 2016 Jul 8.
Backing materials play important role in enhancing the acoustic performance of an ultrasonic transducer. Most backing materials prepared by conventional methods failed to show both high acoustic impedance and attenuation, which however determine the bandwidth and axial resolution of acoustic transducer, respectively. In the present work, taking advantage of the structural feature of 3D graphene foam as a confined space for dense packing of tungsten spheres with the assistance of centrifugal force, the desired structural requirement for high impedance is obtained. Meanwhile, superior thermal conductivity of graphene contributes to the acoustic attenuation via the conversion of acoustic waves to thermal energy. The tight contact between tungstate spheres, epoxy matrix, or graphene makes the acoustic wave depleted easily for the absence of air barrier. The as-prepared 3DG/W80 wt %/epoxy film in 1 mm, prepared using ∼41 μm W spheres in diameter, not only displays acoustic impedance of 13.05 ± 0.11 MRayl but also illustrates acoustic attenuation of 110.15 ± 1.23 dB/cm MHz. Additionally, the composite film exhibits a high acoustic absorption coefficient, which is 94.4% at 1 MHz and 100% at 3 MHz, respectively. Present composite film outperforms most of the reported backing materials consisting of metal fillers/polymer blending in terms of the acoustic impedance and attenuation.
背衬材料在提高超声换能器的声学性能方面起着重要作用。大多数采用传统方法制备的背衬材料未能同时表现出高声阻抗和高衰减,而这两个参数分别决定了声学换能器的带宽和轴向分辨率。在本工作中,利用 3D 石墨烯泡沫的结构特点,在离心力的作用下,钨球可以在其中形成紧密堆积的受限空间,从而获得所需的高声阻抗结构要求。同时,石墨烯的优异导热性有助于通过将声波转换为热能来实现声衰减。由于不存在气隙屏障,因此钨酸盐球体、环氧树脂基体或石墨烯之间的紧密接触使得声波很容易被耗散。所制备的 3DG/W80wt%/epoxy 薄膜厚度为 1mm,采用直径约为 41μm 的 W 球制备,不仅具有 13.05±0.11MRayl 的声阻抗,而且具有 110.15±1.23dB/cmMHz 的声衰减。此外,该复合薄膜在 1MHz 时的声吸收系数高达 94.4%,在 3MHz 时高达 100%。与大多数由金属填料/聚合物共混组成的报道的背衬材料相比,这种复合材料在声阻抗和声衰减方面具有优势。