Actuation and Mapping of Surface Acoustic Wave Induced High-Frequency Wavefields on Suspended Graphene Membranes

IF 16 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY ACS Nano Pub Date : 2025-04-01 DOI:10.1021/acsnano.4c18508
Hande N. Açıkgöz, Dong Hoon Shin, Inge C. van der Knijff, Allard J. Katan, Xiliang Yang, Peter G. Steeneken, Gerard J. Verbiest, Sabina Caneva
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Abstract

High-frequency acoustic devices based on two-dimensional (2D) materials are emerging platforms to design and manipulate the spatiotemporal response of acoustic waves for next-generation sensing and contactless actuation applications. Conventional actuation methods, however, cannot be applied to all 2D materials, are frequency-limited or influenced by substrate interactions. Therefore, a universal, high-frequency, on-chip actuation technique is needed. Here, we demonstrate that surface acoustic waves (SAWs) can efficiently actuate suspended 2D materials by exciting suspended graphene membranes with high-frequency (375 MHz) Rayleigh waves and mapping the resulting vibration field with atomic force acoustic microscopy (AFAM), enabling direct visualization of wave propagation without substrate interference. Acoustic waves traveling from supported to suspended graphene experience a reduction in acoustic wavelength from 10 μm to ∼2 μm due to the decrease in effective bending rigidity, leading to a decrease in wave velocity on suspended graphene. By varying the excitation frequency through laser photothermal actuation (0–100 MHz) and SAW excitation (375 MHz), we observed a phase velocity change from ∼160 m/s to ∼700 m/s. This behavior is consistent with the nonlinear dispersion of acoustic waves, as predicted by plate theory, in suspended graphene membranes. The geometry and bending rigidity of the membrane thus play key roles in modulating the acoustic wave pattern and wavelength. This combined SAW actuation and AFAM visualization scheme advances the understanding of acoustic transport at the nanoscale limit and provides a route toward the manipulation of localized wavefields for on-chip patterning and transport over 2D materials surfaces.

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悬浮石墨烯膜表面声波诱导高频波场的驱动与映射
基于二维(2D)材料的高频声学器件是设计和操纵声波时空响应的新兴平台,用于下一代传感和非接触式驱动应用。然而,传统的驱动方法不能应用于所有的二维材料,受到频率限制或受衬底相互作用的影响。因此,需要一种通用的、高频的片上驱动技术。在这里,我们证明了表面声波(saw)可以有效地驱动悬浮的二维材料,通过高频(375 MHz)瑞利波激励悬浮的石墨烯膜,并用原子力声学显微镜(AFAM)绘制产生的振动场,从而在没有衬底干扰的情况下直接可视化波的传播。由于有效弯曲刚度的降低,从支撑石墨烯到悬浮石墨烯的声波波长从10 μm减少到~ 2 μm,导致悬浮石墨烯上的波速降低。通过激光光热驱动(0-100 MHz)和SAW激励(375 MHz)改变激发频率,我们观察到相速度从~ 160 m/s变化到~ 700 m/s。这种行为与平板理论预测的悬浮石墨烯膜中声波的非线性色散一致。因此,膜的几何形状和弯曲刚度在调制声波模式和波长方面起着关键作用。这种SAW驱动和AFAM可视化方案的结合促进了对纳米尺度极限下声传输的理解,并为在片上图像化和二维材料表面传输的局部波场操作提供了一条途径。
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来源期刊
ACS Nano
ACS Nano 工程技术-材料科学:综合
CiteScore
26.00
自引率
4.10%
发文量
1627
审稿时长
1.7 months
期刊介绍: ACS Nano, published monthly, serves as an international forum for comprehensive articles on nanoscience and nanotechnology research at the intersections of chemistry, biology, materials science, physics, and engineering. The journal fosters communication among scientists in these communities, facilitating collaboration, new research opportunities, and advancements through discoveries. ACS Nano covers synthesis, assembly, characterization, theory, and simulation of nanostructures, nanobiotechnology, nanofabrication, methods and tools for nanoscience and nanotechnology, and self- and directed-assembly. Alongside original research articles, it offers thorough reviews, perspectives on cutting-edge research, and discussions envisioning the future of nanoscience and nanotechnology.
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