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Unveiling Cs-adsorption mechanism of Prussian blue analogs: Cs(+)-percolation via vacancies to complete dehydrated state

Metal hexacyanoferrates (MHCF) or Prussian blue analogs are excellent Cs(+)-adsorbents used for radioactive Cs-decontamination. However, the adsorption mechanism is controversial. To clarify the issue, we quantitatively investigated the Cs-adsorption behaviors of potassium copper hexacyanoferrate (K...

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Autores principales: Takahashi, Akira, Tanaka, Hisashi, Minami, Kimitaka, Noda, Keiko, Ishizaki, Manabu, Kurihara, Masato, Ogawa, Hiroshi, Kawamoto, Tohru
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9087018/
https://www.ncbi.nlm.nih.gov/pubmed/35547045
http://dx.doi.org/10.1039/c8ra06377j
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author Takahashi, Akira
Tanaka, Hisashi
Minami, Kimitaka
Noda, Keiko
Ishizaki, Manabu
Kurihara, Masato
Ogawa, Hiroshi
Kawamoto, Tohru
author_facet Takahashi, Akira
Tanaka, Hisashi
Minami, Kimitaka
Noda, Keiko
Ishizaki, Manabu
Kurihara, Masato
Ogawa, Hiroshi
Kawamoto, Tohru
author_sort Takahashi, Akira
collection PubMed
description Metal hexacyanoferrates (MHCF) or Prussian blue analogs are excellent Cs(+)-adsorbents used for radioactive Cs-decontamination. However, the adsorption mechanism is controversial. To clarify the issue, we quantitatively investigated the Cs-adsorption behaviors of potassium copper hexacyanoferrate (KCuHCF) and A(y)Cu[Fe(CN)(6)](1−x)·zH(2)O. To obtain samples having homogeneous chemical composition and particle size, flow systems were used for both synthesis and purification. After sufficient rinsing with water, the range of x stable in aqueous solution in time appropriate for Cs-adsorption was 0.25 < x < 0.50. The relations y = 4 − 2x and z = 10x were also found independent of x, indicating complete dehydration of K(+) in the crystal. We concluded that the excellent Cs-selectivity of MHCF was not due to difference in free energy of the adsorbed state between K(+) and Cs(+) but because of the hydrated state in aqueous solution. We also found that the guiding principle for determining the maximum capacity depended on the chemical composition. In particular, for the range 0.25 < x < 0.35, we propose a new model to understand the suppression of the maximum capacity. In our model, we hypothesize that Cs(+) could migrate in the crystal only through [Fe(CN)(6)](4−) vacancies. The model reproduced the observed maximum capacity without fitting parameters. The model would also be applicable to other MHCFs, e.g. a little adsorption by soluble Prussian blue. The ion exchange between Cs(+) and H(+) occurred only when the implemented K(+) was small.
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spelling pubmed-90870182022-05-10 Unveiling Cs-adsorption mechanism of Prussian blue analogs: Cs(+)-percolation via vacancies to complete dehydrated state Takahashi, Akira Tanaka, Hisashi Minami, Kimitaka Noda, Keiko Ishizaki, Manabu Kurihara, Masato Ogawa, Hiroshi Kawamoto, Tohru RSC Adv Chemistry Metal hexacyanoferrates (MHCF) or Prussian blue analogs are excellent Cs(+)-adsorbents used for radioactive Cs-decontamination. However, the adsorption mechanism is controversial. To clarify the issue, we quantitatively investigated the Cs-adsorption behaviors of potassium copper hexacyanoferrate (KCuHCF) and A(y)Cu[Fe(CN)(6)](1−x)·zH(2)O. To obtain samples having homogeneous chemical composition and particle size, flow systems were used for both synthesis and purification. After sufficient rinsing with water, the range of x stable in aqueous solution in time appropriate for Cs-adsorption was 0.25 < x < 0.50. The relations y = 4 − 2x and z = 10x were also found independent of x, indicating complete dehydration of K(+) in the crystal. We concluded that the excellent Cs-selectivity of MHCF was not due to difference in free energy of the adsorbed state between K(+) and Cs(+) but because of the hydrated state in aqueous solution. We also found that the guiding principle for determining the maximum capacity depended on the chemical composition. In particular, for the range 0.25 < x < 0.35, we propose a new model to understand the suppression of the maximum capacity. In our model, we hypothesize that Cs(+) could migrate in the crystal only through [Fe(CN)(6)](4−) vacancies. The model reproduced the observed maximum capacity without fitting parameters. The model would also be applicable to other MHCFs, e.g. a little adsorption by soluble Prussian blue. The ion exchange between Cs(+) and H(+) occurred only when the implemented K(+) was small. The Royal Society of Chemistry 2018-10-10 /pmc/articles/PMC9087018/ /pubmed/35547045 http://dx.doi.org/10.1039/c8ra06377j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Takahashi, Akira
Tanaka, Hisashi
Minami, Kimitaka
Noda, Keiko
Ishizaki, Manabu
Kurihara, Masato
Ogawa, Hiroshi
Kawamoto, Tohru
Unveiling Cs-adsorption mechanism of Prussian blue analogs: Cs(+)-percolation via vacancies to complete dehydrated state
title Unveiling Cs-adsorption mechanism of Prussian blue analogs: Cs(+)-percolation via vacancies to complete dehydrated state
title_full Unveiling Cs-adsorption mechanism of Prussian blue analogs: Cs(+)-percolation via vacancies to complete dehydrated state
title_fullStr Unveiling Cs-adsorption mechanism of Prussian blue analogs: Cs(+)-percolation via vacancies to complete dehydrated state
title_full_unstemmed Unveiling Cs-adsorption mechanism of Prussian blue analogs: Cs(+)-percolation via vacancies to complete dehydrated state
title_short Unveiling Cs-adsorption mechanism of Prussian blue analogs: Cs(+)-percolation via vacancies to complete dehydrated state
title_sort unveiling cs-adsorption mechanism of prussian blue analogs: cs(+)-percolation via vacancies to complete dehydrated state
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9087018/
https://www.ncbi.nlm.nih.gov/pubmed/35547045
http://dx.doi.org/10.1039/c8ra06377j
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