...
首页> 外文期刊>Photonics Journal, IEEE >Highly Sensitive Photoacoustic Imaging: A New Strategy for Ultrahigh Spatial Resolution Seismic Physical Model Imaging
【24h】

Highly Sensitive Photoacoustic Imaging: A New Strategy for Ultrahigh Spatial Resolution Seismic Physical Model Imaging

机译:高度敏感的光声成像:超高空间分辨率地震物理模型成像的新策略

获取原文
获取原文并翻译 | 示例
           

摘要

Seismic-physical-model imaging (SPM), a successful strategy for the research in seismic wave propagation and wave theoretical predictions, effectively bridges the computation modeling and the field exploration and leads to a nearly ideal setting without a rock matrix. However, the current strategy for SPM imaging, the ultrasonic imaging technology, shows a narrow excitation frequency and a low coupling efficiency, which strongly limit the resolution of the image. Herein, laser ultrasonic imaging strategy, an imaging strategy which merges the large penetration depth of ultrasound imaging and high contrast of optical imaging, is developed for SPM imaging for the first time, where photoacoustic (PA) effect is utilized for the excitation. A customized contrast agent, Co3O4 nanoflake arrays (CONAs), is designed for this special application of photoacoustic imaging in a large-scale via a facile hydrothermal method. The PA properties of the as-prepared CONAs are investigated with both theoretical and experimental methods. The results demonstrate the CONAs enhance the response signal over 16 times due to the strong light absorption, high photoacoustic-to-acoustic transformation efficiency and excellent thermal stability of the CONAs. By applying PA technology with the assistance of CONAs, 3D SPM images with high resolution are achieved.
机译:地震物理模型成像(SPM),一种成功的地震波传播和波理论预测研究的策略,有效地桥接计算建模和现场探索,并导致了没有摇滚矩阵的近乎理想的设置。然而,SPM成像的当前策略,超声成像技术,较窄的激发频率和低耦合效率,其强烈限制了图像的分辨率。这里,激光超声成像策略,合并超声成像的大穿透深度的成像策略和光学成像的高对比度,首次开发了SPM成像,其中光声(PA)效应用于激发。定制的造影剂CO3O4纳米铝饼阵列(CONAS)设计用于通过容易水热法以大规模的光声成像特殊应用。用理论和实验方法研究了AS制备的CONA的PA性质。结果表明,由于强光吸收,高光声 - 声学变换效率和康纳斯的优异热稳定性,CONAS增强了16倍的响应信号。通过在CONAS的帮助下应用PA技术,实现具有高分辨率的3D SPM图像。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号