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 |
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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. |
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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. |
Author_xml | – sequence: 1 givenname: I.A. surname: Artyukov fullname: Artyukov, I.A. email: iart@sci.lebedev.ru organization: P.N.Lebedev Physical Institute, 53 Leninsky Prospekt, Moscow 119991, Russia – sequence: 2 givenname: R.M. surname: Feschenko fullname: Feschenko, R.M. organization: P.N.Lebedev Physical Institute, 53 Leninsky Prospekt, Moscow 119991, Russia – sequence: 3 givenname: A.V. surname: Vinogradov fullname: Vinogradov, A.V. organization: P.N.Lebedev Physical Institute, 53 Leninsky Prospekt, Moscow 119991, Russia – sequence: 4 givenname: Ye.A. surname: Bugayev fullname: Bugayev, Ye.A. organization: National Technical University “Kharkov Polytechnic Institute”, 21 Frunze St., Kharkov 61002, Ukraine – sequence: 5 givenname: O.Y. surname: Devizenko fullname: Devizenko, O.Y. organization: National Technical University “Kharkov Polytechnic Institute”, 21 Frunze St., Kharkov 61002, Ukraine – sequence: 6 givenname: V.V. surname: Kondratenko fullname: Kondratenko, V.V. organization: National Technical University “Kharkov Polytechnic Institute”, 21 Frunze St., Kharkov 61002, Ukraine – sequence: 7 givenname: Yu.S. surname: Kasyanov fullname: Kasyanov, Yu.S. organization: A.M.Prokhorov General Physics Institute, 38 Vavilov St., Moscow 119991, Russia – sequence: 8 givenname: T. surname: Hatano fullname: Hatano, T. organization: Institute of Multidisciplinary Research for Advanced Materials, Tohoku University, 2-1-1 Katahira, Aoba-ku, Sendai 980-8577, Japan – sequence: 9 givenname: M. surname: Yamamoto fullname: Yamamoto, M. organization: Institute of Multidisciplinary Research for Advanced Materials, Tohoku University, 2-1-1 Katahira, Aoba-ku, Sendai 980-8577, Japan – sequence: 10 givenname: S.V. surname: Saveliev fullname: Saveliev, S.V. organization: Institute of Human Morphology, 3 Tsourupa Str., Moscow 117418, Russia |
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CitedBy_id | crossref_primary_10_1088_0953_4075_44_16_165006 crossref_primary_10_1088_1742_6596_425_15_152018 crossref_primary_10_1002_pssa_201026729 crossref_primary_10_3390_app10134621 crossref_primary_10_3367_UFNr_2018_10_038439 crossref_primary_10_1016_j_jmps_2015_12_005 crossref_primary_10_1080_02786826_2012_705448 crossref_primary_10_3367_UFNe_2018_10_038439 crossref_primary_10_3390_photonics10080875 crossref_primary_10_1063_1_4883475 crossref_primary_10_1088_0953_4075_48_14_144011 crossref_primary_10_1134_S0018143923070408 |
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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 |
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