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Nanoscale Phase Mixture and Multifield-Induced Topotactic Phase Transformation in SrFeO<sub>x</sub>

Junjiang Tian, Yang Zhang, Zhen Fan, Haijun Wu, Lei Zhao, Jingjing Rao, Zuhuang Chen, Haizhong Guo, Xubing Lu, Guofu Zhou, Stephen J. Pennycook, Xingsen Gao, Jun‐Ming Liu

2020ACS Applied Materials & Interfaces24 citationsDOI

Abstract

Nanoscale phase mixtures in transition-metal oxides (TMOs) often render these materials susceptible to external stimuli (electric field, mechanical stress, etc.), which can lead to rich functional properties and device applications. Here, direct observation and multifield manipulation of a nanoscale mixture of brownmillerite SrFeO2.5 (BM-SFO) and perovskite SrFeO3 (PV-SFO) phases in SrFeOx (SFO) epitaxial thin films are reported. The mixed-phase SFO film in its pristine state exhibits a nanoscaffold structure consisting of PV-SFO nanodomains embedded in the BM-SFO matrix. This nanoscaffold structure produces gridlike patterns in the current and electrochemical strain maps, owing to the strikingly different electrical and electrochemical properties of BM-SFO and PV-SFO. Moreover, electric field control of reversible topotactic phase transformation between BM-SFO and PV-SFO is demonstrated by electric-field-induced reversible changes in surface height, conductance, and electrochemical strain response. In addition, it is also shown that the BM-SFO → PV-SFO phase transformation can be enabled by applying mechanical stress. This study therefore not only identifies a strong nanometric structure–property correlation in the mixed-phase SFO but also offers a new paradigm for the multifield control of topotactic phase transformation.

Topics & Concepts

Materials scienceNanoscopic scalePhase (matter)NanotechnologyTransformation (genetics)Chemical engineeringCrystallographyOrganic chemistryChemistryBiochemistryGeneEngineeringMagnetic and transport properties of perovskites and related materialsElectronic and Structural Properties of OxidesFerroelectric and Piezoelectric Materials