Issue 22, 2023

Enhanced oxygen transfer rate of chemical looping combustion through lattice expansion on CuMn2O4 oxygen carrier

Abstract

This study applied the lattice expansion strategy to enhance the performance of the CuMn2O4 oxygen carrier. The lattice-expanded oxygen carrier was developed using sulfurization and re-oxidation processes. The lattice of re-oxidized CuMn2O4 (CuMn2O3.5S0.5) did not shrink to the original lattice and maintained the expanded structure because of the residual sulfur in the CuMn2O4. Density functional theory calculations predicted that the lattice expansion accelerates the CH4 oxidation kinetics on the surface and the oxygen mobility in the oxygen carrier. As a result, the oxygen transfer rate was expected to be accelerated. Experimental analysis confirmed the predicted enhancement. The comprehensive characteristic analysis revealed notable variations in the lattice structure and oxidation state between lattice-expanded CuMn2O4 and pristine CuMn2O4 because of the enhanced oxygen transfer rate, as confirmed by temperature-programmed analysis. The chemical looping combustion test showed that the oxygen transfer rate of lattice-expanded CuMn2O4 was 1.6 times higher than that of pristine CuMn2O4. The simulation predicted an enhanced oxygen transfer rate of the oxygen carrier. Based on the results, the strategy of lattice expansion could be a universal approach to enhance the oxygen transfer rate and improve the overall performance of the oxygen carrier.

Graphical abstract: Enhanced oxygen transfer rate of chemical looping combustion through lattice expansion on CuMn2O4 oxygen carrier

Supplementary files

Article information

Article type
Paper
Submitted
04 Sep 2023
Accepted
17 Oct 2023
First published
18 Oct 2023

Sustainable Energy Fuels, 2023,7, 5422-5432

Enhanced oxygen transfer rate of chemical looping combustion through lattice expansion on CuMn2O4 oxygen carrier

B. Seo, J. Lyu, N. Son, M. Kang, N. Park, S. J. Lee, J. W. Lee, Y. Yun, H. Ryu, J. Baek, D. Kang and M. Kim, Sustainable Energy Fuels, 2023, 7, 5422 DOI: 10.1039/D3SE01159C

To request permission to reproduce material from this article, please go to the Copyright Clearance Center request page.

If you are an author contributing to an RSC publication, you do not need to request permission provided correct acknowledgement is given.

If you are the author of this article, you do not need to request permission to reproduce figures and diagrams provided correct acknowledgement is given. If you want to reproduce the whole article in a third-party publication (excluding your thesis/dissertation for which permission is not required) please go to the Copyright Clearance Center request page.

Read more about how to correctly acknowledge RSC content.

Social activity

Spotlight

Advertisements