114,92 €
127,69 €
-10% with code: EXTRA
Electrochemical Water Oxidation at Iron(iii) Oxide Electrodes
Electrochemical Water Oxidation at Iron(iii) Oxide Electrodes
114,92
127,69 €
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Sandra Haschke presents a strategy to enhance the Fe2O3 electrode performance by controlled nanostructuring of the catalyst surface, based on anodized aluminum oxide coated by means of atomic layer deposition. Furthermore, she investigates the influence of underlying conductive layers and post-deposition annealing on the electrode performance and the associated changes in morphology and chemical composition. Exploiting all effects combined delivers an increase in steady-state water oxidation th…
127.69
  • Publisher:
  • Year: 2015
  • Pages: 51
  • ISBN-10: 3658092866
  • ISBN-13: 9783658092863
  • Format: 14.8 x 21 x 0.4 cm, minkšti viršeliai
  • Language: English
  • SAVE -10% with code: EXTRA

Electrochemical Water Oxidation at Iron(iii) Oxide Electrodes (e-book) (used book) | bookbook.eu

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Sandra Haschke presents a strategy to enhance the Fe2O3 electrode performance by controlled nanostructuring of the catalyst surface, based on anodized aluminum oxide coated by means of atomic layer deposition. Furthermore, she investigates the influence of underlying conductive layers and post-deposition annealing on the electrode performance and the associated changes in morphology and chemical composition. Exploiting all effects combined delivers an increase in steady-state water oxidation throughput by a factor of 2.5 with respect to planar electrodes.

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  • Author: Sandra Haschke
  • Publisher:
  • Year: 2015
  • Pages: 51
  • ISBN-10: 3658092866
  • ISBN-13: 9783658092863
  • Format: 14.8 x 21 x 0.4 cm, minkšti viršeliai
  • Language: English English

Sandra Haschke presents a strategy to enhance the Fe2O3 electrode performance by controlled nanostructuring of the catalyst surface, based on anodized aluminum oxide coated by means of atomic layer deposition. Furthermore, she investigates the influence of underlying conductive layers and post-deposition annealing on the electrode performance and the associated changes in morphology and chemical composition. Exploiting all effects combined delivers an increase in steady-state water oxidation throughput by a factor of 2.5 with respect to planar electrodes.

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