26 research outputs found

    Novel Method of Quantifying Radioactive Cesium-Rich Microparticles (CsMPs) in the Environment from the Fukushima Daiichi Nuclear Power Plant

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    Highly radioactive cesium-rich microparticles (CsMPs) were released from the Fukushima Daiichi nuclear power plant (FDNPP) to the surrounding environment at an early stage of the nuclear disaster in March of 2011; however, the quantity of released CsMPs remains undetermined. Here, we report a novel method to quantify the number of CsMPs in surface soils at or around Fukushima and the fraction of radioactivity they contribute, which we call “quantification of CsMPs” (QCP) and is based on autoradiography. Here, photostimulated luminescence (PSL) is linearly correlated to the radioactivity of various microparticles, with a regression coefficient of 0.0523 becquerel/PSL/h (Bq/PSL/h). In soil collected from Nagadoro, Fukushima, Japan, CsMPs were detected in soil sieved with a 114 ÎŒm mesh. There was no overlap between the radioactivities of CsMPs and clay particles adsorbing Cs. Based on the distribution of radioactivity of CsMPs, the threshold radioactivity of CsMPs in the size fraction of <114 ÎŒm was determined to be 0.06 Bq. Based on this method, the number and radioactivity fraction of CsMPs in four surface soils collected from the vicinity of the FDNPP were determined to be 48–318 particles per gram and 8.53–31.8%, respectively. The QCP method is applicable to soils with a total radioactivity as high as ∌106 Bq/kg. This novel method is critically important and can be used to quantitatively understand the distribution and migration of the highly radioactive CsMPs in near-surface environments surrounding Fukushima

    Isotopic signature and nano-texture of cesium-rich micro-particles: Release of uranium and fission products from the Fukushima Daiichi Nuclear Power Plant

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    Highly radioactive cesium-rich microparticles (CsMPs) released from the Fukushima Daiichi Nuclear Power Plant (FDNPP) provide nano-scale chemical fingerprints of the 2011 tragedy. U, Cs, Ba, Rb, K, and Ca isotopic ratios were determined on three CsMPs (3.79–780 Bq) collected within ~10 km from the FDNPP to determine the CsMPs’ origin and mechanism of formation. Apart from crystalline Fe-pollucite, CsFeSi2O6 · nH2O, CsMPs are comprised mainly of Zn–Fe-oxide nanoparticles in a SiO2 glass matrix (up to ~30 wt% of Cs and ~1 wt% of U mainly associated with Zn–Fe-oxide). The 235U/238U values in two CsMPs: 0.030 (±0.005) and 0.029 (±0.003), are consistent with that of enriched nuclear fuel. The values are higher than the average burnup estimated by the ORIGEN code and lower than non-irradiated fuel, suggesting non-uniform volatilization of U from melted fuels with different levels of burnup, followed by sorption onto Zn–Fe-oxides. The nano-scale texture and isotopic analyses provide a partial record of the chemical reactions that occurred in the fuel during meltdown. Also, the CsMPs were an important medium of transport for the released radionuclides in a respirable form

    Crystal Chemistry and Stability of Hydrated Rare-Earth Phosphates Formed at Room Temperature

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    In order to understand the crystal chemical properties of hydrous rare-earth (RE) phosphates, REPO4,hyd, that form at ambient temperature, we have synthesized REPO4,hyd through the interaction of aqueous RE elements (REEs) with aqueous P at room temperature at pH &lt; 6, where the precipitation of RE hydroxides does not occur, and performed rigorous solid characterization. The second experiment was designed identically except for using hydroxyapatite (HAP) crystals as the P source at pH constrained by the dissolved P. Hydrated RE phosphate that precipitated at pH 3 after 3 days was classified into three groups: LREPO4,hyd (La → Gd) containing each REE from La-Gd, MREPO4,hyd (Tb → Ho), and HREPO4,hyd (Er → Lu). The latter two groups included increasing fractions of an amorphous component with increasing ionic radius, which was associated with non-coordinated water. REallPO4,hyd that contains all lanthanides except Pm transformed to rhabdophane structure over 30 days of aging. In the experiments using HAP, light REEs were preferentially distributed into nano-crystals, which can potentially constrain initial RE distributions in aqueous phase. Consequently, the mineralogical properties of hydrous RE phosphates forming at ambient temperature depend on the aging, the pH of the solution, and the average ionic radii of REE, similarly to the well-crystalline RE phosphates

    Caesium fallout in Tokyo on 15th^{th} March, 2011 is dominated by highly radioactive, caesium-rich microparticles

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    In order to understand the chemical properties and environmental impacts oflow-solubility Cs-rich microparticles (CsMPs) derived from the FDNPP, the CsMPscollected from Tokyo were investigated at the atomic scale usinghigh-resolution transmission electron microscopy (HRTEM) and dissolutionexperiments were performed on the air filters. Remarkably, CsMPs 0.58-2.0micrometer in size constituted 80%-89% of the total Cs radioactivity during theinitial fallout events on 15th March, 2011. The CsMPs from Tokyo and Fukushimaexhibit the same texture at the nanoscale: aggregates of Zn-Fe-oxidenanoparticles embedded in amorphous SiO2 glass. The Cs is associated withZn-Fe-oxide nanoparticles or in the form of nanoscale inclusions of intrinsicCs species,rather than dissolved in the SiO2 matrix. The Cs concentration inCsMPs from Tokyo (0.55-10.9 wt%) is generally less than that in particles fromFukushima (8.5-12.9 wt%).The radioactivity per unit mass of CsMPs from Tokyo isstill as high as 1E11 Bq/g, which is extremely high for particles originatingfrom nuclear accidents. Thus, inhalation of the low-solubility CsMPs wouldresult in a high localized energy deposition by beta (0.51-12)*1E-3 Gy/h withinthe 100-micrometer-thick water layer on the CsMP surface) and may havelonger-term effects compared with those predicted for soluble Cs-species

    Caesium fallout in Tokyo on 15th^{th} March, 2011 is dominated by highly radioactive, caesium-rich microparticles

    No full text
    In order to understand the chemical properties and environmental impacts oflow-solubility Cs-rich microparticles (CsMPs) derived from the FDNPP, the CsMPscollected from Tokyo were investigated at the atomic scale usinghigh-resolution transmission electron microscopy (HRTEM) and dissolutionexperiments were performed on the air filters. Remarkably, CsMPs 0.58-2.0micrometer in size constituted 80%-89% of the total Cs radioactivity during theinitial fallout events on 15th March, 2011. The CsMPs from Tokyo and Fukushimaexhibit the same texture at the nanoscale: aggregates of Zn-Fe-oxidenanoparticles embedded in amorphous SiO2 glass. The Cs is associated withZn-Fe-oxide nanoparticles or in the form of nanoscale inclusions of intrinsicCs species,rather than dissolved in the SiO2 matrix. The Cs concentration inCsMPs from Tokyo (0.55-10.9 wt%) is generally less than that in particles fromFukushima (8.5-12.9 wt%).The radioactivity per unit mass of CsMPs from Tokyo isstill as high as 1E11 Bq/g, which is extremely high for particles originatingfrom nuclear accidents. Thus, inhalation of the low-solubility CsMPs wouldresult in a high localized energy deposition by beta (0.51-12)*1E-3 Gy/h withinthe 100-micrometer-thick water layer on the CsMP surface) and may havelonger-term effects compared with those predicted for soluble Cs-species
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