Published December 2019 | Version v1
Journal article

Radiocesium interaction with clay minerals: Theory and simulation advances Post–Fukushima

  • 1. Center for Computational Science and e-Systems, Japan Atomic Energy Agency, Kashiwa, Chiba 277-0871 (Japan)
  • 2. Physical Sciences Division, Pacific Northwest National Laboratory, Richland, WA 99354 (United States)
  • 3. Department of Civil and Environmental Engineering and Princeton Environmental Institute, Princeton University, Princeton, NJ 08544 (United States)
  • 4. Earth and Environmental Science Area, Lawrence Berkeley National Laboratory, Berkeley, CA 94720 (United States)
  • 5. Department of Environmental Science, Policy, and Management, University of California, Berkeley, CA 94720 (United States)
  • 6. Synchrotron Radiation Research Center, Quantum Beam Science Research Directorate (QuBS), National Institutes for Quantum and Radiological Science and Technology (QST), Sayo, Hyogo 679-5148 (Japan)

Description

Highlights: • Recent progress of numerical simulations on radioactive cesium adsorption on clay minerals is reviewed. • Brief review of experiments of adsorption of radiocesium on clay minerals is given. • Key remaining technical topics and some directions toward future solutions of waste soil management are discussed. - Abstract: Insights at the microscopic level of the process of radiocesium adsorption and interaction with clay mineral particles have improved substantially over the past several years, triggered by pressing social issues such as management of huge amounts of waste soil accumulated after the Fukushima Dai–ichi nuclear power plant accident. In particular, computer–based molecular modeling supported by advanced hardware and algorithms has proven to be a powerful approach. Its application can now generally encompass the full complexity of clay particle adsorption sites from basal surfaces to interlayers with inserted water molecules, to edges including fresh and weathered frayed ones. On the other hand, its methodological schemes are now varied from traditional force–field molecular dynamics on large–scale realizations composed of many thousands of atoms including water molecules to first–principles methods on smaller models in rather exacting fashion. In this article, we overview new understanding enabled by simulations across methodological variations, focusing on recent insights that connect with experimental observations, namely: 1) the energy scale for cesium adsorption on the basal surface, 2) progress in understanding the structure of clay edges, which is difficult to probe experimentally, 3) cesium adsorption properties at hydrated interlayer sites, 4) the importance of the size relationship between the ionic radius of cesium and the interlayer distance at frayed edge sites, 5) the migration of cesium into deep interlayer sites, and 6) the effects of nuclear decay of radiocesium. Key experimental observations that motivate these simulation advances are also summarized. Furthermore, some directions toward future solutions of waste soil management are discussed based on the obtained microscopic insights.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.jenvrad.2018.09.007

Additional details

Identifiers

DOI
10.1016/j.jenvrad.2018.09.007;
PII
S0265931X18306477;

Publishing Information

Journal Title
Journal of Environmental Radioactivity
Journal Volume
210
Journal Page Range
p. 105809
ISSN
0265-931X
CODEN
JERAEE

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
51048048
Subject category
S54: ENVIRONMENTAL SCIENCES;
Descriptors DEI
ADSORPTION; CESIUM; CLAYS; COMPUTERIZED SIMULATION; INTERACTIONS; NUCLEAR DECAY; NUCLEAR POWER PLANTS; SOILS; WASTES
Descriptors DEC
ALKALI METALS; DECAY; ELEMENTS; METALS; MINERALS; NUCLEAR FACILITIES; POWER PLANTS; SILICATE MINERALS; SIMULATION; SORPTION; THERMAL POWER PLANTS

Optional Information

Notes
© 2018 The Author(s). Published by Elsevier Ltd. All rights reserved.