Sodium Ion Conductivity in Mixed Former Na2O-P2O5-GeO2 and Na2O-B2O3-P2O5-GeO2 Glasses
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作者:
Sklepic, Kristina
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Rudjer Boskovic Inst, Div Mat Chem, Zagreb 10000, CroatiaRudjer Boskovic Inst, Div Mat Chem, Zagreb 10000, Croatia
Sklepic, Kristina
[1
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Tricot, Gregory
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Univ Lille, CNRS, UMR 8516, LASIR Lab Spectrochim Infrarouge & Raman, F-59000 Lille, FranceRudjer Boskovic Inst, Div Mat Chem, Zagreb 10000, Croatia
Tricot, Gregory
[3
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Mosner, Petr
[2
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Koudelka, Ladislav
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Univ Pardubice, Fac Chem Technol, Dept Gen & Inorgan Chem, Pardubice 53210, Czech RepublicRudjer Boskovic Inst, Div Mat Chem, Zagreb 10000, Croatia
Koudelka, Ladislav
[2
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Mogus-Milankovic, Andrea
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Rudjer Boskovic Inst, Div Mat Chem, Zagreb 10000, CroatiaRudjer Boskovic Inst, Div Mat Chem, Zagreb 10000, Croatia
Mogus-Milankovic, Andrea
[1
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机构:
[1] Rudjer Boskovic Inst, Div Mat Chem, Zagreb 10000, Croatia
[2] Univ Pardubice, Fac Chem Technol, Dept Gen & Inorgan Chem, Pardubice 53210, Czech Republic
[3] Univ Lille, CNRS, UMR 8516, LASIR Lab Spectrochim Infrarouge & Raman, F-59000 Lille, France
In this study, a mixed glass network effect (MGFE) is verified in two sodium ion conducting glass series: 40Na(2)O-(60 - x)P2O5-xGeO(2) and 40Na(2)O-10B(2)O(3)-(50 - x)P2O5-xGeO(2), x = 0-30 mol %. Network former substitution results in the significant electrical conductivity enhancement for both systems. This behavior is explained by the increased mobility of the Na+ ions, due to the depolymerization of the (boro)phosphate network and the emergence of easily conductive pathways after germanate incorporation and formation of various mixed Ge/P (Ge/B/P) structural units. With the help of 1D/2D MAS NMR techniques, we are able to determine and quantify structural units that form a glass network but also to gain insight into local environment and linkages between these units, which is crucial for determining the sodium ion transport mechanism.