191
Ito A, Suenaga M, Ono K (1968) Mössbauer study of soluble Prussian blue, insoluble Prussian
blue, and Turnbull’s blue. J Chem Phys 48:3597–3599. https://doi.org/10.1063/1.1669656
Iwanade A, Kasai N, Hoshina H, Ueki Y, Saiki S, Seko S (2012) Hybrid grafted ion exchanger for
decontamination of radioactive cesium in Fukushima Prefecture and other contaminated areas.
J Radioanal Nucl Chem 293:703–709. https://doi.org/10.1007/s10967-012-1721-2
Jiao S, Tuo J, Xie H, Cai Z, Wang S, Zhu Y (2017) The electrochemical performance of
Cu 3 [Fe(CN) 6 ] 2 as a cathode material for sodium-ion batteries. Mater Res Bull 86:194–200.
https://doi.org/10.1016/j.materresbull.2016.10.019
Karyakin
AA
(2001)
Prussian
blue
and
its
analogues:
electrochemistry
and
analytical
applications.
Electroanalysis
13:813–819.
https://doi.
org/10.1002/1521-4109(200106)13:10%3c813:AID-ELAN813%3e3.0.CO;2-Z
Keggin JF, Miles FD (1936) Structures and formulæ of the Prussian blues and related compounds.
Nature 137:577–578. https://doi.org/10.1038/137577a0
Kim YK, Kim Y, Kim S, Harbottle D, Lee W (2017) Solvent-assisted synthesis of potassium
copper hexacyanoferrate embedded 3D-interconnected porous hydrogel for highly selective
and rapid cesium ion removal. J Environ Chem Eng 5:975–986. https://doi.org/10.1016/j.
jece.2017.01.026
Kravzov J, Rios C, Altagracia M, Monroy-Noyola A, López F (1993) Relationship between physicochemical properties of Prussian blue and its efficacy as antidote against thallium poisoning.
J Appl Toxicol 13:213–216. https://doi.org/10.1002/jat.2550130313
Krishnan V, Xidis AL, Neff VD (1990) Prussian blue solid-state films and membranes as
potassium ion-selective electrodes. Anal Chim Acta 239:7–12. https://doi.org/10.1016/
S0003-2670(00)83828-3
Lee H, Kim YI, Park JK, Choi JW (2012) Sodium zinc hexacyanoferrate with a well-defined open
framework as a positive electrode for sodium ion batteries. Chem Commun 48:8416–8418.
https://doi.org/10.1039/C2CC33771A
Lee HW, Wang RY, Pasta M, Lee SW, Liu N, Cui Y (2014) Manganese hexacyanomanganate
open framework as a high-capacity positive electrode material for sodium-ion batteries. Nat
Commun 5:5280. https://doi.org/10.1038/ncomms6280
Li WJ, Chou SL, Wang JZ, Kang XM, Wang JL, Liu Y, Gu QF, Liu HK, Dou SX (2015) Facile
method to synthesize Na-enriched Na 1+x FeFe(CN) 6 frameworks as cathode with superior electrochemical performance for sodium-ion batteries. Chem Mater 27:1997–2003. https://doi.
org/10.1021/cm504091z
Lilga MA, Orth RJ, Sukamto JPH, Rassat SD, Genders JD, Gopal R (2001) Cesium separation using electrically switched ion exchange. Sep Purif Technol 24:451–466. https://doi.
org/10.1016/s1383-5866(01)00145-9
Ling C, Chen J, Mizuno F (2013) First-principles study of alkali and alkaline earth ion intercalation
in iron hexacyanoferrate: the important role of ionic radius. J Phys Chem C 117:21158–21165.
https://doi.org/10.1021/jp4078689
LIU R, SUN B, LIU D, SUN A (1996) Flow injection gas-diffusion amperometric determination
of trace amounts of ammonium ions with a cupric hexacyanoferrate. Talanta 43(7):1049–1054.
https://doi.org/10.1016/0039-9140(96)01858-9
Liu S, Pan GL, Li GR, Gao XP (2014) Copper hexacyanoferrate nanoparticles as cathode material
for aqueous Al-ion batteries. J Mater Chem A 3:959–962. https://doi.org/10.1039/C4TA04644G
Liu Y, Qiao Y, Zhang W, Li Z, Ji X, Miao L, Yuan L, Hu X, Huang Y (2015a) Sodium storage
in Na-rich Na x FeFe(CN) 6 nanocubes. Nano Energy 12:386–393. https://doi.org/10.1016/j.
nanoen.2015.01.012
Liu H, Yonezawa A, Kumagai K, Sano M, Miyake T (2015b) Cs and Sr removal over highly
effective adsorbents ETS-1 and ETS-2. J Mater Chem A 3:1562–1568. https://doi.org/10.1039/
C4TA06170E
Matsuda T, Takachi M, Moritomo Y (2013) A sodium manganese ferrocyanide thin film for Na-ion
batteries. Chem Commun 49:2750–2752. https://doi.org/10.1039/C3CC38839E
7 Metal Hexacyanoferrate Absorbents for Heavy Metal Removal
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