THERMODYNAMICS PERFORMANCE STUDY OF OXYGEN EVOLUTION REACTION ON ACTIVE SITES OF TRANSITION METAL DOPED NI-FE PHOSPHATE AS ELECTROCATALYSTS FOR GREEN HYDROGEN ELECTROLYSIS CELL ANODE APPLICATIONS

Electrolytic water splitting to generate hydrogen has been regarded as a promising for addressing issues during energy transition, using electricity from renewable energy sources to produce clean hydrogen. Reactions occurring in electrolysis are hydrogen evolution reaction (HER) and oxygen evolution...

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Main Author: Dio Idhola, Rizky
Format: Theses
Language:Indonesia
Online Access:https://digilib.itb.ac.id/gdl/view/86800
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Institution: Institut Teknologi Bandung
Language: Indonesia
id id-itb.:86800
spelling id-itb.:868002024-12-23T12:28:18ZTHERMODYNAMICS PERFORMANCE STUDY OF OXYGEN EVOLUTION REACTION ON ACTIVE SITES OF TRANSITION METAL DOPED NI-FE PHOSPHATE AS ELECTROCATALYSTS FOR GREEN HYDROGEN ELECTROLYSIS CELL ANODE APPLICATIONS Dio Idhola, Rizky Indonesia Theses anode, electrocatalyst, overpotential, water electrolysis INSTITUT TEKNOLOGI BANDUNG https://digilib.itb.ac.id/gdl/view/86800 Electrolytic water splitting to generate hydrogen has been regarded as a promising for addressing issues during energy transition, using electricity from renewable energy sources to produce clean hydrogen. Reactions occurring in electrolysis are hydrogen evolution reaction (HER) and oxygen evolution reaction (OER). OER has important role in water splitting due its sluggish kinetics. Currently, the electrocatalyst materials used are precious metal based material, such as platinum and iridium. Recent studies shown that nickel phospate-based electrocatalysts have potential as efficient OER to replace precious metal-based catalysts. In this research, nickel-iron-phosphate (NiFePO) will be tested as electrocatalyst. Facet 100 which has the lowest surface energy, was doped with Mn, Co, and Cu by replacing one Ni atom at the active site of NiFePO. Subsequently, H2O, OH, O, and OOH were placed on the Ni, Fe and dopant atoms as intermediates in the oxygen evolution reaction. The oxygen evolution reaction simulation used the density functional theory features in the Quantum Espresso software. The results showed that the addition of Co dopants successfully reduced the overpotential of Ni sites on the NiFePO(100) surface significantly (from 0.31 to 0.26 V). The obtained overpotential value is much lower than the commercial catalyst IrO? (0.56 V) Keywords: anode, electrocatalyst, overpotential, water electrolysis text
institution Institut Teknologi Bandung
building Institut Teknologi Bandung Library
continent Asia
country Indonesia
Indonesia
content_provider Institut Teknologi Bandung
collection Digital ITB
language Indonesia
description Electrolytic water splitting to generate hydrogen has been regarded as a promising for addressing issues during energy transition, using electricity from renewable energy sources to produce clean hydrogen. Reactions occurring in electrolysis are hydrogen evolution reaction (HER) and oxygen evolution reaction (OER). OER has important role in water splitting due its sluggish kinetics. Currently, the electrocatalyst materials used are precious metal based material, such as platinum and iridium. Recent studies shown that nickel phospate-based electrocatalysts have potential as efficient OER to replace precious metal-based catalysts. In this research, nickel-iron-phosphate (NiFePO) will be tested as electrocatalyst. Facet 100 which has the lowest surface energy, was doped with Mn, Co, and Cu by replacing one Ni atom at the active site of NiFePO. Subsequently, H2O, OH, O, and OOH were placed on the Ni, Fe and dopant atoms as intermediates in the oxygen evolution reaction. The oxygen evolution reaction simulation used the density functional theory features in the Quantum Espresso software. The results showed that the addition of Co dopants successfully reduced the overpotential of Ni sites on the NiFePO(100) surface significantly (from 0.31 to 0.26 V). The obtained overpotential value is much lower than the commercial catalyst IrO? (0.56 V) Keywords: anode, electrocatalyst, overpotential, water electrolysis
format Theses
author Dio Idhola, Rizky
spellingShingle Dio Idhola, Rizky
THERMODYNAMICS PERFORMANCE STUDY OF OXYGEN EVOLUTION REACTION ON ACTIVE SITES OF TRANSITION METAL DOPED NI-FE PHOSPHATE AS ELECTROCATALYSTS FOR GREEN HYDROGEN ELECTROLYSIS CELL ANODE APPLICATIONS
author_facet Dio Idhola, Rizky
author_sort Dio Idhola, Rizky
title THERMODYNAMICS PERFORMANCE STUDY OF OXYGEN EVOLUTION REACTION ON ACTIVE SITES OF TRANSITION METAL DOPED NI-FE PHOSPHATE AS ELECTROCATALYSTS FOR GREEN HYDROGEN ELECTROLYSIS CELL ANODE APPLICATIONS
title_short THERMODYNAMICS PERFORMANCE STUDY OF OXYGEN EVOLUTION REACTION ON ACTIVE SITES OF TRANSITION METAL DOPED NI-FE PHOSPHATE AS ELECTROCATALYSTS FOR GREEN HYDROGEN ELECTROLYSIS CELL ANODE APPLICATIONS
title_full THERMODYNAMICS PERFORMANCE STUDY OF OXYGEN EVOLUTION REACTION ON ACTIVE SITES OF TRANSITION METAL DOPED NI-FE PHOSPHATE AS ELECTROCATALYSTS FOR GREEN HYDROGEN ELECTROLYSIS CELL ANODE APPLICATIONS
title_fullStr THERMODYNAMICS PERFORMANCE STUDY OF OXYGEN EVOLUTION REACTION ON ACTIVE SITES OF TRANSITION METAL DOPED NI-FE PHOSPHATE AS ELECTROCATALYSTS FOR GREEN HYDROGEN ELECTROLYSIS CELL ANODE APPLICATIONS
title_full_unstemmed THERMODYNAMICS PERFORMANCE STUDY OF OXYGEN EVOLUTION REACTION ON ACTIVE SITES OF TRANSITION METAL DOPED NI-FE PHOSPHATE AS ELECTROCATALYSTS FOR GREEN HYDROGEN ELECTROLYSIS CELL ANODE APPLICATIONS
title_sort thermodynamics performance study of oxygen evolution reaction on active sites of transition metal doped ni-fe phosphate as electrocatalysts for green hydrogen electrolysis cell anode applications
url https://digilib.itb.ac.id/gdl/view/86800
_version_ 1822999683203596288