193
Shiga T, Kondo H, Kato Y, Inoue M (2015) Insertion of calcium ion into Prussian blue analogue
in nonaqueous solutions and its application to a rechargeable battery with dual carriers. J Phys
Chem C 119:27946–27953. https://doi.org/10.1021/acs.jpcc.5b10245
Song J, Wang L, Lu Y, Liu J, Guo B, Xiao P, Lee J-J, Yang X-Q, Henkelman G, Goodenough JB
(2015) Removal of interstitial H 2 O in hexacyanometallates for a superior cathode of a sodiumion battery. J Am Chem Soc 137:2658–2664. https://doi.org/10.1021/ja512383b
Tani Y, Eun H, Umezawa Y (1998) A cation selective electrode based on copper(II) and nickel(II)
hexacyanoferrates: dual response mechanisms, selective uptake or adsorption of analyte cations. Electrochim Acta 43:3431–3441. https://doi.org/10.1016/S0013-4686(98)00089-9
Thomsen KN, Baldwin RP (1989) Amperometric detection of nonelectroactive cations in flow
systems at a cupric hexacyanoferrate electrode. Anal Chem 61:2594–2598. https://doi.
org/10.1021/ac00198a002
Thomsen KN, Baldwin RP (1990) Evaluation of electrodes coated with metal hexacyanoferrate as
amperometric sensors for nonelectroactive cations in flow systems. Electroanalysis 2:263–271.
https://doi.org/10.1002/elan.1140020402
Tokoro H, Ohkoshi SI (2011) Novel magnetic functionalities of Prussian blue analogs. Dalton
Trans 40:6825–6833. https://doi.org/10.1039/C0DT01829E
Ventura M, Mullaiu A, Ciurduc DE, Zappoli S, Giuli G, Tonti D, Enciso E, Giorgetti M (2018)
Thin layer films of copper hexacyanoferrate: structure identification and analytical applications. J Electroanal Chem 827:10–20. https://doi.org/10.1016/j.jelechem.2018.08.044
Vincent T, Vincent C, Guibal E (2015) Immobilization of metal hexacyanoferrate ion-exchangers
for the synthesis of metal ion Sorbents-A mini-review. Molecules 20:20582–20613. https://doi.
org/10.3390/molecules201119718
Wang L, Song J, Qiao R, Wray LA, Hossain MA, Chuang YD, Yang W, Lu Y, Evans D, Lee JJ, Vail
S, Zhao X, Nishijima M, Kakimoto S, Goodenough JB (2015) Rhombohedral Prussian white
as cathode for rechargeable sodium-ion batteries. J Am Chem Soc 137:2548–2554. https://doi.
org/10.1021/ja510347s
Ware M (2008) Prussian blue: artists’ pigment and chemists’ sponge. J Chem Educ 85:612–620.
https://doi.org/10.1021/ed085p612
Wessells CD, Hugings RA, Cui Y (2011) Copper hexacyanoferrate battery electrodes with long
cycle life and high power. Nat Commun 2:550. https://doi.org/10.1038/ncomms1563
Wessells CD, Peddada SV, McDowell MT, Huggins RA, Cui Y (2012) The effect of insertion species on nanostructured open framework hexacyanoferrate battery electrodes. J Electrochem
Soc 159:A98. https://doi.org/10.1149/2.060202jes
Wills AS (2005) Magnetism. Annu Rep Prog Chem Sect A Inorg Chem 101:472–488. https://doi.
org/10.1039/B408369P
Wu X, Deng W, Qian J, Cao Y, Ai X, Yang H (2013) Single-crystal FeFe(CN) 6 nanoparticles: a
high capacity and high rate cathode for Na-ion batteries. J Mater Chem 1:10130. https://doi.
org/10.1039/c3ta12036h
Yang HM, Hwang KS, Park CW, Lee KW (2017) Sodium-copper hexacyanoferrate-functionalized
magnetic nanoclusters for the highly efficient magnetic removal of radioactive caesium from
seawater. Water Res 125:81–90. https://doi.org/10.1016/j.watres.2017.08.037
Yasunari TY, Stohl A, Hayano RS, Burkhart JF, Eckhardt S, Yasunari T (2011) Cesium-137 deposition and contamination of Japanese soils due to the Fukushima nuclear accident. Proc Natl
Acad Sci U S A 108:19530–19534. https://doi.org/10.1073/pnas.1112058108
You Y, Wu XL, Yin YX, Guo XG (2013) A zero-strain insertion cathode material of nickel ferricyanide for sodium-ion batteries. J Mater Chem A 1:14061–14065. https://doi.org/10.1039/
C3TA13223D
You Y, Wu XL, Yin YX, Guo YG (2014) High-quality Prussian blue crystals as superior cathode materials for room-temperature sodium-ion batteries. Energy Environ Sci 7:1643–1647.
https://doi.org/10.1039/C3EE44004D
7 Metal Hexacyanoferrate Absorbents for Heavy Metal Removal
Shiga T, Kondo H, Kato Y, Inoue M (2015) Insertion of calcium ion into Prussian blue analogue
in nonaqueous solutions and its application to a rechargeable battery with dual carriers. J Phys
Chem C 119:27946–27953. https://doi.org/10.1021/acs.jpcc.5b10245
Song J, Wang L, Lu Y, Liu J, Guo B, Xiao P, Lee J-J, Yang X-Q, Henkelman G, Goodenough JB
(2015) Removal of interstitial H 2 O in hexacyanometallates for a superior cathode of a sodiumion battery. J Am Chem Soc 137:2658–2664. https://doi.org/10.1021/ja512383b
Tani Y, Eun H, Umezawa Y (1998) A cation selective electrode based on copper(II) and nickel(II)
hexacyanoferrates: dual response mechanisms, selective uptake or adsorption of analyte cations. Electrochim Acta 43:3431–3441. https://doi.org/10.1016/S0013-4686(98)00089-9
Thomsen KN, Baldwin RP (1989) Amperometric detection of nonelectroactive cations in flow
systems at a cupric hexacyanoferrate electrode. Anal Chem 61:2594–2598. https://doi.
org/10.1021/ac00198a002
Thomsen KN, Baldwin RP (1990) Evaluation of electrodes coated with metal hexacyanoferrate as
amperometric sensors for nonelectroactive cations in flow systems. Electroanalysis 2:263–271.
https://doi.org/10.1002/elan.1140020402
Tokoro H, Ohkoshi SI (2011) Novel magnetic functionalities of Prussian blue analogs. Dalton
Trans 40:6825–6833. https://doi.org/10.1039/C0DT01829E
Ventura M, Mullaiu A, Ciurduc DE, Zappoli S, Giuli G, Tonti D, Enciso E, Giorgetti M (2018)
Thin layer films of copper hexacyanoferrate: structure identification and analytical applications. J Electroanal Chem 827:10–20. https://doi.org/10.1016/j.jelechem.2018.08.044
Vincent T, Vincent C, Guibal E (2015) Immobilization of metal hexacyanoferrate ion-exchangers
for the synthesis of metal ion Sorbents-A mini-review. Molecules 20:20582–20613. https://doi.
org/10.3390/molecules201119718
Wang L, Song J, Qiao R, Wray LA, Hossain MA, Chuang YD, Yang W, Lu Y, Evans D, Lee JJ, Vail
S, Zhao X, Nishijima M, Kakimoto S, Goodenough JB (2015) Rhombohedral Prussian white
as cathode for rechargeable sodium-ion batteries. J Am Chem Soc 137:2548–2554. https://doi.
org/10.1021/ja510347s
Ware M (2008) Prussian blue: artists’ pigment and chemists’ sponge. J Chem Educ 85:612–620.
https://doi.org/10.1021/ed085p612
Wessells CD, Hugings RA, Cui Y (2011) Copper hexacyanoferrate battery electrodes with long
cycle life and high power. Nat Commun 2:550. https://doi.org/10.1038/ncomms1563
Wessells CD, Peddada SV, McDowell MT, Huggins RA, Cui Y (2012) The effect of insertion species on nanostructured open framework hexacyanoferrate battery electrodes. J Electrochem
Soc 159:A98. https://doi.org/10.1149/2.060202jes
Wills AS (2005) Magnetism. Annu Rep Prog Chem Sect A Inorg Chem 101:472–488. https://doi.
org/10.1039/B408369P
Wu X, Deng W, Qian J, Cao Y, Ai X, Yang H (2013) Single-crystal FeFe(CN) 6 nanoparticles: a
high capacity and high rate cathode for Na-ion batteries. J Mater Chem 1:10130. https://doi.
org/10.1039/c3ta12036h
Yang HM, Hwang KS, Park CW, Lee KW (2017) Sodium-copper hexacyanoferrate-functionalized
magnetic nanoclusters for the highly efficient magnetic removal of radioactive caesium from
seawater. Water Res 125:81–90. https://doi.org/10.1016/j.watres.2017.08.037
Yasunari TY, Stohl A, Hayano RS, Burkhart JF, Eckhardt S, Yasunari T (2011) Cesium-137 deposition and contamination of Japanese soils due to the Fukushima nuclear accident. Proc Natl
Acad Sci U S A 108:19530–19534. https://doi.org/10.1073/pnas.1112058108
You Y, Wu XL, Yin YX, Guo XG (2013) A zero-strain insertion cathode material of nickel ferricyanide for sodium-ion batteries. J Mater Chem A 1:14061–14065. https://doi.org/10.1039/
C3TA13223D
You Y, Wu XL, Yin YX, Guo YG (2014) High-quality Prussian blue crystals as superior cathode materials for room-temperature sodium-ion batteries. Energy Environ Sci 7:1643–1647.
https://doi.org/10.1039/C3EE44004D
7 Metal Hexacyanoferrate Absorbents for Heavy Metal Removal
