Soft X-ray imaging of thick carbon-based materials using the normal incidence multilayer optics

The high transparency of carbon-containing materials in the spectral region of “carbon window” ( λ ∼ 4.5–5 nm) introduces new opportunities for various soft X-ray microscopy applications. The development of efficient multilayer coated X-ray optics operating at the wavelengths of about 4.5 nm has sti...

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Published in:Micron (Oxford, England : 1993) Vol. 41; no. 7; pp. 722 - 728
Main Authors: Artyukov, I.A., Feschenko, R.M., Vinogradov, A.V., Bugayev, Ye.A., Devizenko, O.Y., Kondratenko, V.V., Kasyanov, Yu.S., Hatano, T., Yamamoto, M., Saveliev, S.V.
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Language:English
Published: England Elsevier Ltd 01-10-2010
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Abstract The high transparency of carbon-containing materials in the spectral region of “carbon window” ( λ ∼ 4.5–5 nm) introduces new opportunities for various soft X-ray microscopy applications. The development of efficient multilayer coated X-ray optics operating at the wavelengths of about 4.5 nm has stimulated a series of our imaging experiments to study thick biological and synthetic objects. Our experimental set-up consisted of a laser plasma X-ray source generated with the 2nd harmonics of Nd–glass laser, scandium-based thin-film filters, Co/C multilayer mirror and X-ray film UF-4. All soft X-ray images were produced with a single nanosecond exposure and demonstrated appropriate absorption contrast and detector-limited spatial resolution. A special attention was paid to the 3D imaging of thick low-density foam materials to be used in design of laser fusion targets.
AbstractList The high transparency of carbon-containing materials in the spectral region of “carbon window” ( λ ∼ 4.5–5 nm) introduces new opportunities for various soft X-ray microscopy applications. The development of efficient multilayer coated X-ray optics operating at the wavelengths of about 4.5 nm has stimulated a series of our imaging experiments to study thick biological and synthetic objects. Our experimental set-up consisted of a laser plasma X-ray source generated with the 2nd harmonics of Nd–glass laser, scandium-based thin-film filters, Co/C multilayer mirror and X-ray film UF-4. All soft X-ray images were produced with a single nanosecond exposure and demonstrated appropriate absorption contrast and detector-limited spatial resolution. A special attention was paid to the 3D imaging of thick low-density foam materials to be used in design of laser fusion targets.
The high transparency of carbon-containing materials in the spectral region of "carbon window" (l [inline image] 4.5-5 nm) introduces new opportunities for various soft X-ray microscopy applications. The development of efficient multilayer coated X-ray optics operating at the wavelengths of about 4.5 nm has stimulated a series of our imaging experiments to study thick biological and synthetic objects. Our experimental set-up consisted of a laser plasma X-ray source generated with the 2nd harmonics of Nd-glass laser, scandium-based thin-film filters, Co/C multilayer mirror and X-ray film UF-4. All soft X-ray images were produced with a single nanosecond exposure and demonstrated appropriate absorption contrast and detector-limited spatial resolution. A special attention was paid to the 3D imaging of thick low-density foam materials to be used in design of laser fusion targets.
The high transparency of carbon-containing materials in the spectral region of "carbon window" (lambda approximately 4.5-5nm) introduces new opportunities for various soft X-ray microscopy applications. The development of efficient multilayer coated X-ray optics operating at the wavelengths of about 4.5nm has stimulated a series of our imaging experiments to study thick biological and synthetic objects. Our experimental set-up consisted of a laser plasma X-ray source generated with the 2nd harmonics of Nd-glass laser, scandium-based thin-film filters, Co/C multilayer mirror and X-ray film UF-4. All soft X-ray images were produced with a single nanosecond exposure and demonstrated appropriate absorption contrast and detector-limited spatial resolution. A special attention was paid to the 3D imaging of thick low-density foam materials to be used in design of laser fusion targets.
Author Kasyanov, Yu.S.
Kondratenko, V.V.
Hatano, T.
Vinogradov, A.V.
Bugayev, Ye.A.
Yamamoto, M.
Devizenko, O.Y.
Artyukov, I.A.
Saveliev, S.V.
Feschenko, R.M.
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  organization: Institute of Human Morphology, 3 Tsourupa Str., Moscow 117418, Russia
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Keywords Laser plasma
X-ray multilayer mirror
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Soft X-ray microscopy
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Snippet The high transparency of carbon-containing materials in the spectral region of “carbon window” ( λ ∼ 4.5–5 nm) introduces new opportunities for various soft...
The high transparency of carbon-containing materials in the spectral region of "carbon window" (lambda approximately 4.5-5nm) introduces new opportunities for...
The high transparency of carbon-containing materials in the spectral region of "carbon window" (l [inline image] 4.5-5 nm) introduces new opportunities for...
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SubjectTerms Animals
Blood Vessels - ultrastructure
Carbon window
Diptera - ultrastructure
Electron Probe Microanalysis - methods
Humans
Image contrast
Image Processing, Computer-Assisted - methods
Imaging
Laser plasma
Multilayers
Nanostructure
Pancreas - ultrastructure
Soft X-ray microscopy
Soft x-rays
Three dimensional
X-ray multilayer mirror
X-rays
Title Soft X-ray imaging of thick carbon-based materials using the normal incidence multilayer optics
URI https://dx.doi.org/10.1016/j.micron.2010.06.011
https://www.ncbi.nlm.nih.gov/pubmed/20637640
https://search.proquest.com/docview/749005830
https://search.proquest.com/docview/849452524
Volume 41
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