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  • There is an increasing interest in application of inorganic-organic glasses as fast ionic conductors in batteries, supercapacitators, fuel cells or various ion-selective sensors. This is mainly because of theirs conductivity being apparently less dependent on the water content. This makes this type of materials promising for the electrochemical applications operating at the temperatures above 100 °C at ambient pressure. Typical example represents PEM type fuel cell or DMFC. For such applications an elastic material is preferred, because electrochemical reactions at the glass-electrode interface could result in volume changes with subsequent risk of material rupture. Desired glass elasticity and ion-selectivity can be attained by the incorporation of suitable organic compounds. The substitution of the bridging oxygens by organic groups can also decrease materials' viscosity that facilitates the migration of ions and the viscous flow can suppress mechanical tension in the material. The creation of
  • There is an increasing interest in application of inorganic-organic glasses as fast ionic conductors in batteries, supercapacitators, fuel cells or various ion-selective sensors. This is mainly because of theirs conductivity being apparently less dependent on the water content. This makes this type of materials promising for the electrochemical applications operating at the temperatures above 100 °C at ambient pressure. Typical example represents PEM type fuel cell or DMFC. For such applications an elastic material is preferred, because electrochemical reactions at the glass-electrode interface could result in volume changes with subsequent risk of material rupture. Desired glass elasticity and ion-selectivity can be attained by the incorporation of suitable organic compounds. The substitution of the bridging oxygens by organic groups can also decrease materials' viscosity that facilitates the migration of ions and the viscous flow can suppress mechanical tension in the material. The creation of (en)
  • Anorganicko-organická protonově vodivá skla - alternativní pevný elektrolyt (cs)
Title
  • Inorganic-organic proton conducting amorphous materials as an alternative solid electrolyte
  • Inorganic-organic proton conducting amorphous materials as an alternative solid electrolyte (en)
  • Anorganicko-organická protonově vodivá skla - alternativní pevný elektrolyt (cs)
skos:prefLabel
  • Inorganic-organic proton conducting amorphous materials as an alternative solid electrolyte
  • Inorganic-organic proton conducting amorphous materials as an alternative solid electrolyte (en)
  • Anorganicko-organická protonově vodivá skla - alternativní pevný elektrolyt (cs)
skos:notation
  • RIV/60461373:22310/04:00012325!RIV/2005/GA0/223105/N
http://linked.open.../vavai/riv/strany
  • 1354
http://linked.open...avai/riv/aktivita
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  • P(GA106/04/1279)
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  • 568281
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  • RIV/60461373:22310/04:00012325
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  • proton conductive glass;fuel cell;membrane conductivity (en)
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  • [4DC6CF22B9F9]
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  • Thessaloniki
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  • Thessaloniki
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  • 55th Annual Meeting of the International Society of Electrochemistry. Book of Abstracts I.
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  • Bouzek, Karel
  • Míka, Martin
  • Paidar, Martin
  • Moravcová, Sabina
  • Mašinová, Markéta
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http://linked.open.../riv/zahajeniAkce
number of pages
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  • International Society of Electrochemistry, Ziti Publl.
http://localhost/t...ganizacniJednotka
  • 22310
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