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在先进激光光源(ALLS)开发基于超快激光的用于生物医学应用的X射线体内相衬显微CT光束线。

Development of ultrafast laser-based x-ray in-vivo phase-contrast micro-CT beamline for biomedical applications at Advanced Laser Light Source (ALLS).

作者信息

Kincaid Russell, Krol Andrzej, Fourmaux Sylvain, Kieffer Jean-Claude, Serbanescu Cristina, Servol Marina, Vogelsang Levon, Wilkins Steve, Stevenson Andrew, Nesterets Yakov, Lipson Edward, Ye Hongwei, Pogany Andrew

机构信息

Department of Physics, Syracuse University, Syracuse, NY, 13244 USA.

出版信息

Proc SPIE Int Soc Opt Eng. 2008 Jan 1;7078:707818.1-707818.12. doi: 10.1117/12.795542.

DOI:10.1117/12.795542
PMID:20046808
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2799898/
Abstract

We are developing and exploring the imaging performance of, an in vivo, in-line holography, x-ray phase-contrast, micro-CT system with an ultrafast laser-based x-ray (ULX) source. By testing and refining our system, and by performing computer simulations, we plan to improve system performance in terms of contrast resolution and multi-energy imaging to a level beyond what can be obtained using a conventional microfocal x-ray tube. Initial CT projection sets at single energy (Mo K(alpha) and K(beta) lines) were acquired in the Fresnel regime and reconstructed for phantoms and a euthanized mouse. We also performed computer simulations of phase-contrast micro-CT scans for low-contrast, soft-tissue, tumor imaging. We determined that, in order to perform a phase-contrast, complete micro-CT scan using ULX, the following conditions must be met: (i) the x-ray source needs to be stable during the scan; (ii) the laser focal spot size needs to be less than 10 mum for source-to-object distance greater than 30 cm; (iii) the laser light intensity on the target needs to be in the range of 5 x 10(17) to 5 x 10(19) W/cm(2); (iv) the ablation protection system needs to allow uninterrupted scans; (v) the laser light focusing on the target needs to remain accurate during the entire scan; (vi) a fresh surface of the target must be exposed to consecutive laser shots during the entire scan; (vii) the effective detector element size must be less than 12 mum. Based on the results obtained in this research project, we anticipate that the new 10 Hz, 200 TW laser with 50 W average power that is being commissioned at ALLS will allow us practical implementation of in vivo x-ray phase-contrast micro-CT.

摘要

我们正在开发并探索一种基于超快激光的X射线(ULX)源的体内在线全息X射线相衬显微CT系统的成像性能。通过测试和优化我们的系统,并进行计算机模拟,我们计划在对比度分辨率和多能量成像方面将系统性能提升至超越传统微焦点X射线管所能达到的水平。在菲涅耳区采集了单能量(钼Kα和Kβ线)的初始CT投影数据集,并对体模和一只安乐死的小鼠进行了重建。我们还对低对比度软组织肿瘤成像的相衬显微CT扫描进行了计算机模拟。我们确定,为了使用ULX进行相衬完整的显微CT扫描,必须满足以下条件:(i)扫描过程中X射线源需要稳定;(ii)对于源到物体距离大于30厘米的情况,激光焦点尺寸需要小于10微米;(iii)靶上的激光光强需要在5×10¹⁷至5×10¹⁹瓦/平方厘米的范围内;(iv)消融保护系统需要允许不间断扫描;(v)整个扫描过程中聚焦在靶上的激光需要保持精确;(vi)整个扫描过程中必须有新鲜的靶表面暴露于连续的激光脉冲;(vii)有效探测器元件尺寸必须小于12微米。基于本研究项目获得的结果,我们预计正在澳大利亚光源实验室调试的新的10赫兹、200太瓦且平均功率为50瓦的激光将使我们能够实际实现体内X射线相衬显微CT。

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本文引用的文献

1
Soft tissue small avascular tumor imaging with x-ray phase-contrast micro-CT in-line holography.利用X射线相衬显微CT在线全息术对软组织小型无血管肿瘤进行成像
Proc SPIE Int Soc Opt Eng. 2008;6913:69133z. doi: 10.1117/12.772761.
2
Geometric misalignment and calibration in cone-beam tomography.锥形束断层扫描中的几何失准与校准
Med Phys. 2004 Dec;31(12):3242-66. doi: 10.1118/1.1803792.
3
Medical phase contrast x-ray imaging: current status and future prospects.医学相衬X射线成像:现状与未来展望
Phys Med Biol. 2004 Aug 21;49(16):3573-83. doi: 10.1088/0031-9155/49/16/005.
4
An experimental method of determining relative phase-contrast factor for x-ray imaging systems.一种用于确定X射线成像系统相对相位对比因子的实验方法。
Med Phys. 2004 May;31(5):997-1002. doi: 10.1118/1.1688213.
5
Quantification of the effect of system and object parameters on edge enhancement in phase-contrast radiography.相位对比X射线摄影中系统和物体参数对边缘增强效果的量化
Med Phys. 2003 Nov;30(11):2888-96. doi: 10.1118/1.1617430.
6
Quantitative in-line phase-contrast imaging with multienergy X rays.多能X射线定量在线相衬成像
Phys Rev Lett. 2001 Jun 18;86(25):5827-30. doi: 10.1103/PhysRevLett.86.5827.
7
Analytic method based on identification of ellipse parameters for scanner calibration in cone-beam tomography.基于识别椭圆参数的分析方法用于锥束断层扫描中的扫描仪校准。
Phys Med Biol. 2000 Nov;45(11):3489-508. doi: 10.1088/0031-9155/45/11/327.
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Quantitative methods in phase-contrast x-ray imaging.相衬X射线成像中的定量方法。
J Digit Imaging. 2000 May;13(2 Suppl 1):121-6. doi: 10.1007/BF03167641.