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Cs absorption capacity and selectivity of crystalline and amorphous Hf and Zr phosphates

Removal of radioactive Cs from sodium-rich solutions is a technical challenge that goes back to post World War II nuclear waste storage and treatment; and interest in this topic was reinvigorated by the Fukushima-Daiichi nuclear power plant disaster, 10 years ago. Since the 1960's there has been considerable focus on layered Zr phosphates as robust inorganic sorbents for separation of radionuclides such as Cs. Here we present synthesis and characterization, and direct comparison of Cs sorption capacity and selectivity of four related materials: 1) crystalline α-Zr phosphate and α-Hf phosphate, and 2) amorphous analogues of these. Powder X-ray diffraction, thermogravimetry, solid-state 31P magic angle spinning nuclear magnetic resonance (MAS-NMR) spectroscopy, and compositional analysis (inductively coupled plasma optical emission spectroscopy and mass spectroscopy, ICP OES and ICP MS) provided formulae; respectively M(HPO4)2∙1H2O and M(HPO4)2∙4H2O (M = Hf, Zr) for crystalline and amorphous analogues. Maximum Cs loading, competitive Cs-Na selectivity and maximum Cs-Na loading followed by the above characterizations plus 133Cs MAS-NMR spectroscopy revealed that amorphous analogues are considerably better Cs-sorbents (based on maximum Cs-loading and selectivity over Na) than the well-studied crystalline Zr-analogue. Additionally, crystalline α-Hf phosphate is better Cs-sorbent than crystalline α-Zr phosphate. All these studies consistently show that Hf phosphate is less crystallize than Zr phosphate, when obtained under similar or identical synthesis conditions. We attribute this to lower solubility of Hf phosphate compared to Zr phosphate, preventing ‘defect healing’ during the synthesis process.

37 INORGANIC, ORGANIC, PHYSICAL, AND ANALYTICAL CH↗

Materials Data on CsNa3 by Materials Project

CsNa3 is alpha bismuth trifluoride structured and crystallizes in the cubic Fm-3m space group. The structure is three-dimensional. Cs is bonded in a body-centered cubic geometry to fourteen Na atoms. There are eight shorter (4.10 Å) and six longer (4.73 Å) Cs–Na bond lengths. There are two inequivalent Na sites. In the first Na site, Na is bonded to four equivalent Cs and four equivalent Na atoms to form a mixture of face, edge, and corner-sharing NaCs4Na4 tetrahedra. All Na–Na bond lengths are 4.10 Å. In the second Na site, Na is bonded in a 6-coordinate geometry to six equivalent Cs and eight equivalent Na atoms.

36 MATERIALS SCIENCE↗

Materials Data on CsNa2 by Materials Project

Na2Cs is Hexagonal Laves structured and crystallizes in the monoclinic P2_1/m space group. The structure is three-dimensional. Cs is bonded in a 12-coordinate geometry to four equivalent Cs and twelve Na atoms. There are a spread of Cs–Cs bond distances ranging from 4.73–4.79 Å. There are a spread of Cs–Na bond distances ranging from 4.55–4.58 Å. There are four inequivalent Na sites. In the first Na site, Na is bonded to six equivalent Cs and six Na atoms to form a mixture of corner, edge, and face-sharing NaCs6Na6 cuboctahedra. There are two shorter (3.88 Å) and four longer (3.89 Å) Na–Na bond lengths. In the second Na site, Na is bonded to six equivalent Cs and six Na atoms to form a mixture of corner, edge, and face-sharing NaCs6Na6 cuboctahedra. There are a spread of Na–Na bond distances ranging from 3.89–3.91 Å. In the third Na site, Na is bonded to six equivalent Cs and six Na atoms to form a mixture of corner, edge, and face-sharing NaCs6Na6 cuboctahedra. There are one shorter (3.88 Å) and one longer (3.90 Å) Na–Na bond lengths. In the fourth Na site, Na is bonded to six equivalent Cs and six Na atoms to form a mixture of corner, edge, and face-sharing NaCs6Na6 cuboctahedra.

36 MATERIALS SCIENCE↗