Laplace‐Pressure‐Stabilized Rutile Solid‐Solution Catalysts for Acidic Water Oxidation: Enabling DSA‐Inspired Compositions

C Chang Hyun Park J Juneseo Ahn D Dongho Kim (Spectroscopy Laboratory for Functional π-Electronic Systems and Department of Chemistry) H Hyeonsoo Wi (Department of Materials Science and Engineering Korea Advanced Institute of Science and Technology Daejeon South Korea) K Ki Hyun Park (Department of Materials Science and Engineering) J Jun Seop Kim (Department of Materials Science and Engineering) S Sangmyeong Lee (Department of Materials Science and Engineering) S Sung‐Yoon Chung (Department of Materials Science and Engineering Korea Advanced Institute of Science and Technology Daejeon South Korea)

Abstract

ABSTRACT An early phase diagram study in 1967 revealed surprisingly wide immiscible gaps in the rutile‐type IrO 2 ─TiO 2 and IrO 2 ─SnO 2 systems, even though the three oxides share the same crystal structure and nearly identical ionic radii. This finding indicates that the formation of IrO 2 ‐based solid solutions, especially with oxides of different structures, is thermodynamically challenging. Using more than 20 foreign metal (M) cations, we demonstrate that single‐phase rutile (Ir, M)O 2 and (Sn, M)O 2 solid solutions containing up to 30 at.% M can be obtained when the crystal size is below 10 nm, whereas larger, submicron‐scale crystals exhibit immiscible behavior. In particular, complete solid solutions are achieved across the entire composition range in the nanoscale IrO 2 ─SnO 2 system. This enhancement in miscibility under high Laplace pressure is not restricted to specific foreign cations but represents a general phenomenon. These results are exploited to synthesize rutile‐phase nanocrystals incorporating DSA‐inspired quaternary cations (Sn, Nb, Ru, and Ir), which show high corrosion resistance and catalytic activity under anodic potentials. Quantitative electrochemical analyses further show that the catalytic durability of these quaternary nanocrystals, despite the significantly reduced Ir content, is comparable to that of IrO 2 during the oxygen evolution reaction in acidic water electrolysis.

Article Details

Volume / Issue Vol. 38, Issue 46
Published August 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (8)

C

Chang Hyun Park

J

Juneseo Ahn

D

Dongho Kim

Spectroscopy Laboratory for Functional π-Electronic Systems and Department of Chemistry

H

Hyeonsoo Wi

Department of Materials Science and Engineering Korea Advanced Institute of Science and Technology Daejeon South Korea

K

Ki Hyun Park

Department of Materials Science and Engineering

J

Jun Seop Kim

Department of Materials Science and Engineering

S

Sangmyeong Lee

Department of Materials Science and Engineering

S

Sung‐Yoon Chung

Department of Materials Science and Engineering Korea Advanced Institute of Science and Technology Daejeon South Korea