Kvantovaya Elektronika
RUS  ENG    JOURNALS   PEOPLE   ORGANISATIONS   CONFERENCES   SEMINARS   VIDEO LIBRARY   PACKAGE AMSBIB  
General information
Latest issue
Archive
Impact factor
Submit a manuscript

Search papers
Search references

RSS
Latest issue
Current issues
Archive issues
What is RSS



Kvantovaya Elektronika:
Year:
Volume:
Issue:
Page:
Find






Personal entry:
Login:
Password:
Save password
Enter
Forgotten password?
Register


Kvantovaya Elektronika, 2021, Volume 51, Number 5, Pages 383–388 (Mi qe17442)  

This article is cited in 19 scientific papers (total in 19 papers)

Problems of photonics in medical diagnostics

Broadband (100 kHz – 100 MHz) ultrasound PVDF detectors for raster-scan optoacoustic angiography with acoustic resolution

A. A. Kurnikovab, K. G. Pavlovaab, A. G. Orlovaa, A. V. Khilova, V. V. Perekatovaa, A. V. Kovalchuka, P. V. Subocheva

a Federal Research Center The Institute of Applied Physics of the Russian Academy of Sciences, Nizhny Novgorod
b National Research Lobachevsky State University of Nizhny Novgorod
References:
Abstract: Spherical ultrasonic antennas are used in raster-scan optoacoustic (OA) angiography to record broadband signals generated by haemoglobin molecules in blood when they absorb pulsed optical radiation. Depending on the size of haemoglobincontaining structures, the characteristic frequencies of OA signals can vary quite significantly, ranging from hundreds of kilohertz to hundreds of megahertz. Meanwhile, the bandwidth of the receiving frequency band of standard piezoelectric sensors, as a rule, does not exceed the centre frequency value. It is possible to expand the receiving band of ultrasonic detectors to the required 0.1 kHz – 100 MHz values by using nonresonant piezomaterials based on polyvinidylene fluoride (PVDF). Two ultra-wideband detectors based on PVDF piezofilms of different thicknesses (9 μm and 25 μm) with different amplitude-frequency characteristics are experimentally compared. Comparative OA imaging of a tissue-like phantom demonstrates that the low-frequency sensor (film thickness l = 25 μm) has a greater depth of field, while the high-frequency sensor (l = 9 μm) has a better sensitivity in the range of 40 – 100 MHz. Using OA imaging of an experimental tumour in vivo, it is shown that a sensor with l = 25 μm is better suited for examining normal tissue containing relatively large blood vessels, while a sensor with l = 9 μm is better suited for studying tumour tissue containing a large number of multidirectional blood vessels of minimal size comparable to the maximum spatial resolution of the OA system.
Keywords: optoacoustic angiography, optoacoustic microscopy, PVDF films, model experiment, tumour angiogenesis, CT26 mouse colon carcinoma.
Funding agency Grant number
Ministry of Education and Science of the Russian Federation 075-15-2020-906
Received: 16.02.2021
English version:
Quantum Electronics, 2021, Volume 51, Issue 5, Pages 383–388
DOI: https://doi.org/10.1070/QEL17538
Bibliographic databases:
Document Type: Article
Language: Russian
Supplementary materials:
pic_3.pdf (908.4 Kb)
pic_4.pdf (908.4 Kb)
pic_5.pdf (1.7 Mb)
pic_6.pdf (1.7 Mb)


Citation: A. A. Kurnikov, K. G. Pavlova, A. G. Orlova, A. V. Khilov, V. V. Perekatova, A. V. Kovalchuk, P. V. Subochev, “Broadband (100 kHz – 100 MHz) ultrasound PVDF detectors for raster-scan optoacoustic angiography with acoustic resolution”, Kvantovaya Elektronika, 51:5 (2021), 383–388 [Quantum Electron., 51:5 (2021), 383–388]
Linking options:
  • https://www.mathnet.ru/eng/qe17442
  • https://www.mathnet.ru/eng/qe/v51/i5/p383
    Erratum
    This publication is cited in the following 19 articles:
    Citing articles in Google Scholar: Russian citations, English citations
    Related articles in Google Scholar: Russian articles, English articles
    Квантовая электроника Quantum Electronics
     
      Contact us:
     Terms of Use  Registration to the website  Logotypes © Steklov Mathematical Institute RAS, 2024