Tailoring the structural and transport properties of Ba2In2O5 through Cr6+ substitution for enhanced oxygen permeation

Xiao, Xingxing and Bamburov, Aleksandr and Moreno Fernandez, Harol and Barroso, Margarida and Cichocka, Magdalena Ola and Erdem, Emre and Thiem, Moritz and Xie, Wenjie and Neumann, Marie and Perez-Dieste, Virginia and Kolb, Ute and Hofmann, Jan Philipp and Scavini, Marco and Canadillas-Delgado, Laura and Yaremchenko, Aleksey and Widenmeyer, Marc and Weidenkaff, Anke (2026) Tailoring the structural and transport properties of Ba2In2O5 through Cr6+ substitution for enhanced oxygen permeation. Chemistry of Materials, 38 (5). pp. 2403-2419. ISSN 0897-4756 (Print) 1520-5002 (Online)

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Abstract

This work reveals the structural evolution and transport behavior of chromium-substituted Ba2In2O5 (BIO) as a mixed ionic electronic conductor for oxygen transport membranes. Controlled substitution of In3+ by Cr6+ induces a transition from an orthorhombic brownmillerite to an on average cubic defect-perovskite (ABO3−δ) phase while suppressing the high-temperature phase transformations typical of undoped BIO. A comprehensive set of structural and spectroscopic techniques confirms the stabilization of Cr6+ in the lattice and its function as a donor dopant. The aliovalent substitution introduces additional electrons while reducing the oxygen-vacancy concentration in the lattice, resulting in increased electronic and decreased ionic conductivities. The composition with x = 0.1 achieves a well-balanced contribution from ionic and electronic carriers, yielding the highest ambipolar conductivity and oxygen permeation flux among the studied samples. At higher substitution levels (e.g., x = 0.2), where In3+ and Cr6+ coexist on the B-site of the perovskite framework, a coupled donor/acceptor system (Cr6+/In3+) is formed, giving rise to complex charge compensation mechanisms and mixed electronic conduction. These findings provide fundamental insights into the crystal structure, defect chemistry, and charge transport mechanisms in Cr-substituted BIO, offering a rational design strategy for efficient oxygen transport membranes.
Item Type: Article
Divisions: Faculty of Engineering and Natural Sciences
Depositing User: Emre Erdem
Date Deposited: 21 Apr 2026 13:05
Last Modified: 21 Apr 2026 13:05
URI: https://research.sabanciuniv.edu/id/eprint/53853

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