Abnormal percolative transport and colossal electroresistance induced by anisotropic strain in (011)-Pr0.7(Ca0.6Sr0.4)0.3MnO3/ PMN-PT heterostructure

Ying Ying Zhao, Jing Wang, Hao Kuang, Feng Xia Hu, Hong Rui Zhang, Yao Liu, Ying Zhang, Shuan Hu Wang, Rong Rong Wu, Ming Zhang, Li Fu Bao, Ji Rong Sun, Bao Gen Shen

Research output: Contribution to journalArticlepeer-review

35 Scopus citations

Abstract

Abnormal percolative transport in inhomogeneous systems has drawn increasing interests due to its deviation from the conventional percolation picture. However, its nature is still ambiguous partly due to the difficulty in obtaining controllable abnormal percolative transport behaviors. Here, we report the first observation of electric-field-controlled abnormal percolative transport in (011)-Pr0.7(Ca0.6Sr0.4)0.3MnO3/ 0.7Pb(Mg1/3Nb2/3)O3-0.3PbTiO1/3 heterostructure. By introducing an electric-field-induced in-plane anisotropic strain-field in a phase separated PCSMO film, we stimulate a significant inverse thermal hysteresis (-17.5 K) and positive colossal electroresistance (11460%), which is found to be crucially orientation-dependent and completely inconsistent with the well accepted conventional percolation picture. Further investigations reveal that such abnormal inverse hysteresis is strongly related to the preferential formation of ferromagnetic metallic domains caused by in-plane anisotropic strain-field. Meanwhile, it is found that the positive colossal electroresistance should be ascribed to the coactions between the anisotropic strain and the polarization effect from the poling of the substrate which leads to orientation and bias-polarity dependencies for the colossal electroresistance. This work unambiguously evidences the indispensable role of the anisotropic strain-field in driving the abnormal percolative transport and provides a new perspective for well understanding the percolation mechanism in inhomogeneous systems.

Original languageEnglish
Article number7075
JournalScientific Reports
Volume4
DOIs
StatePublished - 17 Nov 2014
Externally publishedYes

Fingerprint

Dive into the research topics of 'Abnormal percolative transport and colossal electroresistance induced by anisotropic strain in (011)-Pr0.7(Ca0.6Sr0.4)0.3MnO3/ PMN-PT heterostructure'. Together they form a unique fingerprint.

Cite this