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2017 | OriginalPaper | Chapter

1. Introduction

Authors : Sean R. Bishop, Nicola H. Perry

Published in: Electro-Chemo-Mechanics of Solids

Publisher: Springer International Publishing

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Abstract

In this chapter, we introduce the exciting field of electro-chemo-mechanics. We highlight examples demonstrating the significant interplay between composition, electrical, and mechanical properties. This chapter also introduces how each of the following chapters in this book addresses aspects of electro-chemo-mechanics.

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Literature
1.
go back to reference Tuller, H. L., & Bishop, S. R. (2011). Point defects in oxides: tailoring materials through defect engineering. Annual Review of Materials Research, 41, 369–398.CrossRef Tuller, H. L., & Bishop, S. R. (2011). Point defects in oxides: tailoring materials through defect engineering. Annual Review of Materials Research, 41, 369–398.CrossRef
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go back to reference Mayeshiba, T., & Morgan, D. (2015). Strain effects on oxygen migration in perovskites. Physical Chemistry Chemical Physics: PCCP, 17, 2715–2721.CrossRef Mayeshiba, T., & Morgan, D. (2015). Strain effects on oxygen migration in perovskites. Physical Chemistry Chemical Physics: PCCP, 17, 2715–2721.CrossRef
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go back to reference Bishop, S. R., et al. (2014). Chemical expansion: implications for electrochemical energy storage and conversion devices. Annual Review of Materials Research, 44, 205–239. Bishop, S. R., et al. (2014). Chemical expansion: implications for electrochemical energy storage and conversion devices. Annual Review of Materials Research, 44, 205–239.
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go back to reference Bishop, S. R., et al. (2013). Reducing the chemical expansion coefficient in ceria by addition of zirconia. Energy & Environmental Science, 6, 1142–1146.CrossRef Bishop, S. R., et al. (2013). Reducing the chemical expansion coefficient in ceria by addition of zirconia. Energy & Environmental Science, 6, 1142–1146.CrossRef
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go back to reference Ruehrup, V., & Wiemhoefer, H.-D. (2006). Ionic conductivity of Gd- and Y-doped ceria-zirconia solid solutions. Zeitschrift für Naturforschung B [Journal of Chemical Sciences], 61, 916–922. Ruehrup, V., & Wiemhoefer, H.-D. (2006). Ionic conductivity of Gd- and Y-doped ceria-zirconia solid solutions. Zeitschrift für Naturforschung B [Journal of Chemical Sciences], 61, 916–922.
6.
go back to reference Marrocchelli, D., Perry, N. H., & Bishop, S. R. (2015). Understanding chemical expansion in perovskite-structured oxides. Physical Chemistry Chemical Physics: PCCP, 17, 10028–10039.CrossRef Marrocchelli, D., Perry, N. H., & Bishop, S. R. (2015). Understanding chemical expansion in perovskite-structured oxides. Physical Chemistry Chemical Physics: PCCP, 17, 10028–10039.CrossRef
7.
go back to reference Perry, N. H., Bishop, S. R., & Tuller, H. L. (2014). Tailoring chemical expansion by controlling charge localization: In situ X-ray diffraction and dilatometric study of (La, Sr)(Ga, Ni)O3-δ perovskite. Journal of Materials Chemistry A, 2, 18906–18916.CrossRef Perry, N. H., Bishop, S. R., & Tuller, H. L. (2014). Tailoring chemical expansion by controlling charge localization: In situ X-ray diffraction and dilatometric study of (La, Sr)(Ga, Ni)O3-δ perovskite. Journal of Materials Chemistry A, 2, 18906–18916.CrossRef
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go back to reference Marrocchelli, D., Bishop, S. R., Tuller, H. L., Watson, G. W., & Yildiz, B. (2012). Charge localization increases chemical expansion in cerium-based oxides. Physical Chemistry Chemical Physics: PCCP, 14, 12070–12074.CrossRef Marrocchelli, D., Bishop, S. R., Tuller, H. L., Watson, G. W., & Yildiz, B. (2012). Charge localization increases chemical expansion in cerium-based oxides. Physical Chemistry Chemical Physics: PCCP, 14, 12070–12074.CrossRef
9.
go back to reference Marrocchelli, D., Bishop, S. R., Tuller, H. L., & Yildiz, B. (2012). Understanding chemical expansion in non-stoichiometric oxides: Ceria and zirconia case studies. Advanced Functional Materials, 22, 1958–1965.CrossRef Marrocchelli, D., Bishop, S. R., Tuller, H. L., & Yildiz, B. (2012). Understanding chemical expansion in non-stoichiometric oxides: Ceria and zirconia case studies. Advanced Functional Materials, 22, 1958–1965.CrossRef
10.
go back to reference Perry, N. H., Kim, J. J., Bishop, S. R., & Tuller, H. L. (2015). Strongly coupled thermal and chemical expansion in the perovskite oxide system Sr(Ti, Fe)O3−α. Journal of Materials Chemistry A, 3, 3602–3611.CrossRef Perry, N. H., Kim, J. J., Bishop, S. R., & Tuller, H. L. (2015). Strongly coupled thermal and chemical expansion in the perovskite oxide system Sr(Ti, Fe)O3−α. Journal of Materials Chemistry A, 3, 3602–3611.CrossRef
11.
go back to reference Perry, N. H., Marrocchelli, D., Bishop, S. R., & Tuller, H. L. (2016). Understanding and controlling chemo-mechanical coupling in perovskite oxides. Electrochemical Society. Perry, N. H., Marrocchelli, D., Bishop, S. R., & Tuller, H. L. (2016). Understanding and controlling chemo-mechanical coupling in perovskite oxides. Electrochemical Society.
Metadata
Title
Introduction
Authors
Sean R. Bishop
Nicola H. Perry
Copyright Year
2017
DOI
https://doi.org/10.1007/978-3-319-51407-9_1

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