Jump to main content
US EPA
United States Environmental Protection Agency
Search
Search
Main menu
Environmental Topics
Laws & Regulations
About EPA
Health & Environmental Research Online (HERO)
Contact Us
Print
Feedback
Export to File
Search:
This record has one attached file:
Add More Files
Attach File(s):
Display Name for File*:
Save
Citation
Tags
HERO ID
8481362
Reference Type
Journal Article
Title
Optically stimulated luminescence (OSL) from Ag-doped Li2B4O7 crystals
Author(s)
Kananen, BE; Maniego, ES; Golden, EM; Giles, NC; Mcclory, JW; Adamiv, VT; Burak, YaV; Halliburton, LE; ,
Year
2016
Is Peer Reviewed?
Yes
Journal
Journal of Luminescence
ISSN:
0022-2313
Publisher
ELSEVIER SCIENCE BV
Location
AMSTERDAM
Page Numbers
190-196
DOI
10.1016/j.jlumin.2016.04.032
Web of Science Id
WOS:000377997700029
URL
https://linkinghub.elsevier.com/retrieve/pii/S0022231316300230
Exit
Abstract
Optically stimulated luminescence (CW-OSL) is observed from Ag-doped lithium tetraborate (Li2B4O7) crystals. Photoluminescence, optical absorption, and electron paramagnetic resonance (EPR) are used to identify the defects participating in the OSL process. As-grown crystals have Ag+ ions substituting for Li+ ions. They also have Ag+ ions occupying interstitial sites. During a room-temperature exposure to ionizing radiation, holes are trapped at the Ag+ ions that replace Li+ ions and electrons are trapped at the interstitial Ag+ ions, i.e., the radiation forms Ag2+ (4d(9)) ions and Ag-0 (4d(10)5s(1)) atoms. These Ag2+ and Ag-0 centers have characteristic EPR spectra. The Ag-0 centers also have a broad optical absorption band peaking near 370 nm. An OSL response is observed when the stimulation wavelength overlaps this absorption band. Specifically, stimulation with 400 nm light produces an intense OSL response when emission is monitored near 270 nm. Electrons optically released from the Ag-0 centers recombine with holes trapped at Ag2+ ions to produce the ultraviolet emission. The OSL response is progressively smaller as the stimulation light is moved to longer wavelengths (i.e., away from the 370 nm peak of the absorption band of the Ag-0 electron traps). Oxygen vacancies are also present in the Ag-doped Li2B4O7 crystals, and their role in the OSL process as a secondary relatively short-lived electron trap is described. (c) 2016 Elsevier B.V. All rights reserved.
Home
Learn about HERO
Using HERO
Search HERO
Projects in HERO
Risk Assessment
Transparency & Integrity