Journal of Innovative Optical Health Sciences, Volume. 11, Issue 5, 1850022(2018)

A photoacoustic imaging system with variable gain at different depths

Tian Guan1,2、*, Yao Li1,2, Muqun Yang3, Yong Jiang4, and Yonghong He1
Author Affiliations
  • 1Shenzhen Key Laboratory for Minimal Invasive Medical Technologies Graduate School at Shenzhen Tsinghua University, Shenzhen 518055, P. R. China
  • 2Department of Biomedical Engineering Tsinghua University, Beijing 100084, P. R. China
  • 3Center of Precision Medicine and Healthcare Tsinghua-Berkeley Shenzhen Institute, Shenzhen 518055, P. R. China
  • 4Shenzhen Wisonic Medical Technology Co., Ltd. Taoyuan Street, Nanshan District, Shenzhen 518055, P. R. China
  • show less
    References(22)

    [1] [1] J. Kim, S. Park, Y. Jung, S. Chang, J. Park, Y. M. Zhang, J. F. Lovell,C.Kim, "Programmable real-time clinical photoacoustic and ultrasound imaging system," Sci. Rep. 6(11), 35137 (2016).

    [2] [2] K. Sivasubramanian, M. Pramanik, "High frame rate photoacoustic imaging at 7000 frames per second using clinical ultrasound system," Biomed. Opt. Express 7(2), 312–323 (2016).

    [3] [3] A. G. Bell, "Selenium and the photophone," Nature 22, 500–503 (1880).

    [4] [4] L. V. Wang, "Multiscale photoacoustic microscopy and computed tomography," Nat. Photonics 3(9), 503–509 (2009).

    [5] [5] L. H. V. Wang, S. Hu, "Photoacoustic tomography: In vivo imaging from organelles to organs," Science 335(6075), 1458–1462 (2012).

    [6] [6] S. Zackrisson, S. van de Ven, S. S. Gambhir, "Light in and sound out: Emerging translational strategies for photoacoustic imaging," Cancer Res. 74(4), 979–1004 (2014).

    [7] [7] X. D. Wang, Y. J. Pang, G. Ku, X. Y. Xie, G. Stoica, L. H. V. Wang, "Noninvasive laser-induced photoacoustic tomography for structural and functional in vivo imaging of the brain," Nat. Biotechnol. 21(7), 803–806 (2003).

    [8] [8] J. Gamelin, A. Maurudis, A. Aguirre, F. Huang, P. Y. Guo, L. V. Wang, Q. Zhu, "A real-time photoacoustic tomography system for small animals," Opt. Express 17(13), 10489–10498 (2009).

    [9] [9] M. Pramanik, G. Ku, C. H. Li, L. H. V. Wang, "Design and evaluation of a novel breast cancer detection system combining both thermoacoustic, (TA) and photoacoustic (PA) tomography," Med. Phys. 35(6), 2218–2223 (2008).

    [10] [10] A. A. Oraevsky, E. V. Savateeva, S. V. Solomatin, A. A. Karabutov, V. G. Andreev, Z. Gatalica, T. Khamapirad, P. M. Henrichs, "Optoacoustic imaging of blood for visualization and diagnostics of breast cancer," Proc. SPIE 4618, 81–94 (2002).

    [11] [11] K. H. Song, E. W. Stein, J. A. Margenthaler, L. V. Wang, "Noninvasive photoacoustic identification of sentinel lymph nodes containing methylene blue in vivo in a rat model," J. Biomed. Opt. 13(5), 054033 (2008).

    [12] [12] K. H. Song, C. Kim, K. Maslov, L. V. Wang, "Noninvasive in vivo spectroscopic nanorod-contrast photoacoustic mapping of sentinel lymph nodes," Eur. J. Radiol. 70(2), 227–231 (2009).

    [13] [13] C. Passmann, H. Ermert, "A 100-MHz ultrasound imaging system for dermatologic and ophthalmologic diagnostics," IEEE Trans. Ultrason. Ferroelectr. Freq. Control 43(4), 545–552 (1996).

    [14] [14] T. Misaridis, J. A. Jensen, "Use of modulated excitation signals in medical ultrasound. Part I: Basic concepts and expected benefits," IEEE Trans. Ultrason. Ferroelectr. Freq. Control 52(2), 177–191 (2005).

    [15] [15] S. J. Jung, S. K. Hong, O. K. Kwon, "Low-power lownoise amplifier using attenuation-adaptive noise control for ultrasound imaging systems," IEEE Trans. Biomed. Circuits Syst. 11(1), 108–116 (2017).

    [16] [16] AFE5809 fully integrated, Texas Instruments Incorporated, Dallas, Texas,USA, http://www.ti.com/ product AFE5809/datasheet (2014), pp. 33–35.

    [17] [17] G. Marquez, L. H. V. Wang, S. P. Lin, J. A. Schwartz, S. L. Thomsen, "Anisotropy in the absorption and scattering spectra of chicken breast tissue," Appl. Optics 37(4), 798–804 (1998).

    [18] [18] J. L. Sandell, T. C. Zhu, "A review of in vivo optical properties of human tissues and its impact on PDT," J. Biophotonics 4(11–12), 773–787 (2011).

    [19] [19] American Natianal Standard for Safe Use of Lasers (Laser Institute of America, 2007), pp. 70–77.

    [20] [20] C. Kim, T. N. Erpelding, L. Jankovic, L. V. Wang, "Performance benchmarks of an array-based handheld photoacoustic probe adapted from a clinical ultrasound system for non-invasive sentinel lymph node imaging", Philos. Trans. R. Soc. A, Math. Phys. Eng. Sci. 369(1955), 4644–4650 (2011).

    [21] [21] D. P. Wang, Y. H. Wang, W. R. Wang, D. D. Luo, U. Chitgupi, J. M. Geng, Y. Zhou, L. D. Wang, J. F. Lovell, J. Xia, "Deep tissue photoacoustic computed tomography with a fast and compact laser system," Biomed. Opt. Express 8(1), 112–123 (2017).

    [22] [22] G. Ku, L. H. V. Wang, "Deeply penetrating photoacoustic tomography in biological tissues enhanced with an optical contrast agent," Opt. Lett. 30(5), 507–509 (2005).

    Tools

    Get Citation

    Copy Citation Text

    Tian Guan, Yao Li, Muqun Yang, Yong Jiang, Yonghong He. A photoacoustic imaging system with variable gain at different depths[J]. Journal of Innovative Optical Health Sciences, 2018, 11(5): 1850022

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Received: Feb. 28, 2018

    Accepted: Apr. 26, 2018

    Published Online: Dec. 26, 2018

    The Author Email: Tian Guan (guantian@sz.tsinghua.edu.cn)

    DOI:10.1142/s1793545818500220

    Topics