Enhanced columnar structure in CsI layer by substrate patterning

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Columnar structure in evaporated CsI layers can be controlled by patterning substrates as well as varying evaporation conditions. Mesh-patterned substrates with various dimensions were created by spin-coating polyimide on glass or amorphous silicon substrates and defining patterns with standard photolithography technique. CsI(Tl) layers 200--1000 {mu}m were evaporated. Scintillation properties of these evaporated layers, such as light yield and speed, were equivalent to those of the source materials. Spatial resolution of X-ray detectors consisting of these layers and a linear array of X-ray detectors consisting of these layers and a linear array of Si photodiodes was evaluated by exposing them to … continued below

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4 p.

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Jing, T.; Cho, G.; Drewery, J.; Kaplan, S. N.; Mireshghi, A.; Perez-Mendez, V. et al. October 1, 1991.

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Columnar structure in evaporated CsI layers can be controlled by patterning substrates as well as varying evaporation conditions. Mesh-patterned substrates with various dimensions were created by spin-coating polyimide on glass or amorphous silicon substrates and defining patterns with standard photolithography technique. CsI(Tl) layers 200--1000 {mu}m were evaporated. Scintillation properties of these evaporated layers, such as light yield and speed, were equivalent to those of the source materials. Spatial resolution of X-ray detectors consisting of these layers and a linear array of X-ray detectors consisting of these layers and a linear array of Si photodiodes was evaluated by exposing them to a 25{mu}m narrow beam of X-ray. The results obtained with 200{mu}m thick CsI layers coupled to a linear photodiode array with 20 dots/mm resolution showed that the spatial resolution of CsI(Tl) evaporated on patterned substrates was about 75 {mu}m FWHM, whereas that on CsI(Tl) on flat substrates was about 230 {mu}m FWHM. Micrographs taken by SEM revealed that these layers retained the well-defined columnar structure originating from substrate patterns. Adhesion and light transmission of CsI(Tl) were also improved by patterning the substrate.

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4 p.

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OSTI; NTIS; INIS; GPO Dep.

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  • 1991 Institute of Electrical and Electronic Engineers (IEEE) nuclear science symposium and medical imaging conference,Santa Fe, NM (United States),2-9 Nov 1991

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  • Other: DE92004099
  • Report No.: LBL--31383
  • Report No.: CONF-911106--44
  • Grant Number: AC03-76SF00098
  • Office of Scientific & Technical Information Report Number: 10107124
  • Archival Resource Key: ark:/67531/metadc1281313

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Office of Scientific & Technical Information Technical Reports

Reports, articles and other documents harvested from the Office of Scientific and Technical Information.

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  • October 1, 1991

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  • Oct. 12, 2018, 6:44 a.m.

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  • Nov. 26, 2018, 7:23 p.m.

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Jing, T.; Cho, G.; Drewery, J.; Kaplan, S. N.; Mireshghi, A.; Perez-Mendez, V. et al. Enhanced columnar structure in CsI layer by substrate patterning, article, October 1, 1991; California. (https://digital.library.unt.edu/ark:/67531/metadc1281313/: accessed April 24, 2024), University of North Texas Libraries, UNT Digital Library, https://digital.library.unt.edu; crediting UNT Libraries Government Documents Department.

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