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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Official URL: https://dx.doi.org/10.1021/acs.chemmater.5c03157
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 |

