Electronics Research Laboratory, Department of Physics, University of Helsinki, Gustaf Hällströmin katu 2, FIN 00560 Helsinki, Finland.
Rev Sci Instrum. 2021 Jul 1;92(7):074901. doi: 10.1063/5.0047351.
Scanning acoustic microscopy (SAM) finds use across many disciplines, e.g., biology, industrial quality control, and materials science, thanks to its unique ability to quantify mechanical sample properties combined with its high resolution. However, such imaging is often slow, especially if averaging is necessary. We present a Coded Excitation Scanning Acoustic Microscope (CESAM) that employs coded signals and show that it produces images of higher signal-to-noise ratios (SNRs) than the classical SAM in a comparable measurement time. The CESAM employs coded signals instead of the short bursts used in traditional SAMs, and we employ both linear and non-linear frequency modulation. Our results show that compared to the SAM approach, this modulation increases the SNR by 16.3 dB (from 39.9 to 56.2 dB) and reduces the echo duration by 26.7% when we employ a linear chirp to the transducer with a nominal bandwidth of 130-370 MHz. Driving the transducer with a broader bandwidth signal using non-linear chirps (100-450 MHz), we obtained a SNR increase of 10.3 dB and a reduced echo duration of 70.5%. The shorter echo duration increases z-resolution, whereas the lateral resolution remains limited by the wavelength. Finally, we show that by using these coded signals, one can obtain enhanced image quality relative to the standard actuation of the same measurement time. Our results have potential to invigorate the field of acoustic microscopy, especially with samples where the enhanced SNR and/or contrast-to-noise ratio is crucial for image quality.
扫描声学显微镜 (SAM) 由于其独特的量化机械样品特性的能力以及高分辨率,在生物学、工业质量控制和材料科学等多个领域得到了广泛应用。然而,这种成像通常速度较慢,特别是如果需要平均的话。我们提出了一种编码激励扫描声学显微镜 (CESAM),它采用编码信号,并表明它在可比的测量时间内比传统的 SAM 产生更高的信噪比 (SNR) 的图像。CESAM 采用编码信号代替传统 SAM 中使用的短脉冲,并采用线性和非线性频率调制。我们的结果表明,与 SAM 方法相比,这种调制将 SNR 提高了 16.3dB(从 39.9dB 提高到 56.2dB),并将回波持续时间缩短了 26.7%,当我们对具有 130-370MHz 标称带宽的换能器施加线性啁啾时。使用非线性啁啾(100-450MHz)驱动具有更宽带宽信号的换能器,我们获得了 10.3dB 的 SNR 提高和 70.5%的回波持续时间缩短。较短的回波持续时间提高了 z 分辨率,而横向分辨率仍然受波长限制。最后,我们表明,通过使用这些编码信号,可以在相同测量时间的标准激励下获得增强的图像质量。我们的结果有可能激发声学显微镜领域的活力,特别是对于那些增强的 SNR 和/或对比度对图像质量至关重要的样品。