• DocumentCode
    52424
  • Title

    Scintillation Properties of {\\rm Nd}^{3+} -Doped {\\rm Lu}_{2}{{\\rm O}_3} Ceramics in the

  • Author

    Kurosawa, Shunsuke ; Liqiong An ; Yamaji, Akihiro ; Suzuki, A. ; Yokota, Yuji ; Shirasaki, Keisuke ; Yamamura, T. ; Ito, Akinori ; Goto, Tetsu ; Boulon, Georges ; Yoshikawa, Akira

  • Author_Institution
    Inst. of Mater. Res., Tohoku Univ., Sendai, Japan
  • Volume
    61
  • Issue
    1
  • fYear
    2014
  • fDate
    Feb. 2014
  • Firstpage
    316
  • Lastpage
    319
  • Abstract
    Nd3+-doped Lu2O3 (Nd: Lu2O3) is a candidate for an infrared scintillator because (i) Lu2O3 has a high density of 9.5 g/cm3 and a high atomic number of 67 and (ii) Nd3+-doped materials emit in the infrared range and the emission lines from Nd3+ can be used in medical applications since human body has a transparency window between 600 and 1,100 nm. However, it is extremely difficult to fabricate Lu2O3 single crystals using conventional crystal growth methods because of the high melting point (2,510 ° C). Using solid-state reactions, it is much easier to fabricate Lu2O3 into a ceramic structure. Therefore, Nd: Lu2O3 transparent ceramics were fabricated using a spark plasma sintering method. This technique is comparatively simple and consumes less time than other methods such as vacuum hot pressing. The scintillation properties and transmittance spectra of the as-produced ceramics were studied in both the visible and infrared regions. Radioluminescence spectra were measured in the range 800-1,200 nm. Nd3+ emission lines were observed in the transparency window of human body. Thus, these ceramic materials could be a candidate for medical imaging applications.
  • Keywords
    ceramics; infrared spectra; lutetium compounds; melting point; neodymium; photoluminescence; scintillation; sintering; transparency; visible spectra; Lu2O3:Nd; Nd3+-doped Lu2O3 ceramics; atomic number; ceramic structure; crystal growth; high-melting point; human body; infrared regions; infrared scintillator; medical imaging applications; radioluminescence spectra; scintillation properties; single crystals; solid-state reactions; spark plasma sintering; transmittance spectra; transparency window; vacuum hot pressing; visible regions; Ceramics; Crystals; Educational institutions; Plasma temperature; Sparks; Ceramics scintillators; infrared emission; scintillation counters;
  • fLanguage
    English
  • Journal_Title
    Nuclear Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9499
  • Type

    jour

  • DOI
    10.1109/TNS.2013.2290554
  • Filename
    6704851