Water electrolysis is a very promising technology for sustainable hydrogen generation using renewable electrical energy. The excellent performance and dynamic behavior for storing electrical energy in hydrogen allow polymer electrolyte membrane (PEM) electrolysis to cover the gap between the intermittent renewable power production and the grid demand at different time horizons and scales. This work is addressed to the development and characterization of high performance nanostructured Ir-Ru-oxide electro-catalyst achieving for the rate determining oxygen evolution reaction a current density of 3 A cm -2 at about 1.8 V (> 80% enthalpy efficiency) with a low catalyst loading (0.34 mg cm -2 ). The stability characteristics were studied in practical PEM elec- trolysis cells operating at 80 °C, using several durability tests of 1000 h each to evaluate the reliability of this electro-catalyst for real-life operation. Further insights on the degradation mechanism were acquired by sub- jecting the catalyst to potential steps in a specially designed electrochemical flow cell under corrosive liquid electrolyte with on-line monitoring of the dissolved ions. Structural, morphology, composition and surface analysis of the anode electro-catalyst after operation in the electrolysis cell, complemented by in-situ electro- chemical diagnostics, provided important insights into the degradation mechanisms. Catalyst operation at high turnover frequency (TOF) was observed to cause a progressive change of Lewis acidity characteristics with time for both Ir and Ru cations thus influencing their ability to promote water oxidation

New insights into the stability of a high performance nanostructured catalyst for sustainable water electrolysis

Siracusano S;Baglio V;
2017

Abstract

Water electrolysis is a very promising technology for sustainable hydrogen generation using renewable electrical energy. The excellent performance and dynamic behavior for storing electrical energy in hydrogen allow polymer electrolyte membrane (PEM) electrolysis to cover the gap between the intermittent renewable power production and the grid demand at different time horizons and scales. This work is addressed to the development and characterization of high performance nanostructured Ir-Ru-oxide electro-catalyst achieving for the rate determining oxygen evolution reaction a current density of 3 A cm -2 at about 1.8 V (> 80% enthalpy efficiency) with a low catalyst loading (0.34 mg cm -2 ). The stability characteristics were studied in practical PEM elec- trolysis cells operating at 80 °C, using several durability tests of 1000 h each to evaluate the reliability of this electro-catalyst for real-life operation. Further insights on the degradation mechanism were acquired by sub- jecting the catalyst to potential steps in a specially designed electrochemical flow cell under corrosive liquid electrolyte with on-line monitoring of the dissolved ions. Structural, morphology, composition and surface analysis of the anode electro-catalyst after operation in the electrolysis cell, complemented by in-situ electro- chemical diagnostics, provided important insights into the degradation mechanisms. Catalyst operation at high turnover frequency (TOF) was observed to cause a progressive change of Lewis acidity characteristics with time for both Ir and Ru cations thus influencing their ability to promote water oxidation
2017
Istituto di Tecnologie Avanzate per l'Energia - ITAE
Inglese
40
618
632
https://www.sciencedirect.com/science/article/pii/S2211285517305529
Water splitting Electrolysis
Ir-Ru oxide
Nanostructured electro-catalysts
3
info:eu-repo/semantics/article
262
Siracusano S.; Hodnik N.; Jovanovic P.; RuizZepeda F.; Sala M.; Baglio V.; Arico A.S.
01 Contributo su Rivista::01.01 Articolo in rivista
none
   High Performance PEM Electrolyzer for Cost-effective Grid Balancing Applications
   HPEM2GAS
   H2020
   700008
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/338579
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