Malinovic, Marko ; Paciok, Paul ; Koh, Ezra Shanli ; Geuß, Moritz ; Choi, Jisik ; Pfeifer, Philipp ; Hofmann, Jan Philipp ; Göhl, Daniel ; Heggen, Marc ; Cherevko, Serhiy ; Ledendecker, Marc (2024)
Size‐Controlled Synthesis of IrO₂ Nanoparticles at High Temperatures for the Oxygen Evolution Reaction.
In: Advanced Energy Materials, 2023, 13 (28)
doi: 10.26083/tuprints-00024703
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Item Type: | Article |
---|---|
Type of entry: | Secondary publication |
Title: | Size‐Controlled Synthesis of IrO₂ Nanoparticles at High Temperatures for the Oxygen Evolution Reaction |
Language: | English |
Date: | 13 February 2024 |
Place of Publication: | Darmstadt |
Year of primary publication: | 2023 |
Place of primary publication: | Weinheim |
Publisher: | Wiley-VCH |
Journal or Publication Title: | Advanced Energy Materials |
Volume of the journal: | 13 |
Issue Number: | 28 |
Collation: | 9 Seiten |
DOI: | 10.26083/tuprints-00024703 |
Corresponding Links: | |
Origin: | Secondary publication DeepGreen |
Abstract: | Iridium oxide is the state‐of‐the‐art catalyst for electrochemical water oxidation in an acidic medium. Despite being one of the rarest elements in the Earth's crust, there is a pressing need to maximize the utilization and longevity of active iridium centers. While conventional low‐temperature synthesis can yield nanostructures with high mass‐specific activity, they are often insufficiently stable during water oxidation. Structurally ordered iridium oxide is one of the most stable electrocatalysts utilized in polymer electrolyte membrane water electrolysis that benefits from the chemically ordered structure. However, its preparation requires thermal treatment at high temperatures, which improves its durability but can also result in reduced surface area and altered particle morphology. In this study, the challenge of controlling nanoparticle size during the preparation of structurally ordered iridium oxide is successfully addressed, which typically requires high‐temperature thermal treatment. By utilizing a silica nanoreactor as a hard template, a precise control is achieved over the nanoparticle size during high‐temperature thermal treatment. This approach maintains high durability while avoiding the common problem of reduced surface area and altered particle morphology. Specifically, this study is able to synthesize iridium oxide nanoparticles at temperatures up to 800 °C, while keeping their dimensions below 10 nm. |
Uncontrolled Keywords: | iridium oxide nanoparticles, oxygen evolution reaction, polymer electrolyte membrane water electrolysis |
Identification Number: | 2301450 |
Status: | Publisher's Version |
URN: | urn:nbn:de:tuda-tuprints-247035 |
Classification DDC: | 500 Science and mathematics > 540 Chemistry |
Divisions: | 11 Department of Materials and Earth Sciences > Material Science > Surface Science 07 Department of Chemistry > Ernst-Berl-Institut |
Date Deposited: | 13 Feb 2024 13:51 |
Last Modified: | 16 Apr 2024 07:05 |
SWORD Depositor: | Deep Green |
URI: | https://tuprints.ulb.tu-darmstadt.de/id/eprint/24703 |
PPN: | 517160757 |
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