Small

Correlated Magnetic and Electrical Phenomena in Epitaxially Weaved Manganite Lateral Homostructures

Yao-Wen Chang 1
Yu-Chen Liu 1
Shih-Wen Huang 2
Jia-Yuan Sun 3
Sheng-Zhu Ho 1
Wen-Yen Tzeng 4
Chun-Chien Chiu 1
Yu-Chieh Ku 3
Puneet Kaur 1
Tim A Butcher 2, 5
Cinthia Piamonteze 2
Urs Staub 2
Yi-Chun Chen 1
Chun-Fu Chang 6
CHANG-YANG KUO 3, 7, 8
Ying-Hao Chu 9
Armin Kleibert 2
Chih-Wei Luo 3, 10
Jian Yang 1, 11
Show full list: 19 authors
2
 
Center for Photon Science Paul Scherrer Institut (PSI) Villigen CH5232 Switzerland
4
 
Department of Electronic Engineering National Formosa University Yunlin 632301 Taiwan
6
 
Max‐Planck Institute for Chemical Physics of Solids 01187 Dresden Germany
10
 
Institute of Physics National Yang Ming Chiao Tung University Hsinchu 300093 Taiwan
11
 
Center for Quantum Frontiers of Research & Technology (QFort) National Cheng Kung University Tainan 701401 Taiwan
Publication typeJournal Article
Publication date2025-02-09
Journal: Small
scimago Q1
SJR3.348
CiteScore17.7
Impact factor13
ISSN16136810, 16136829
Abstract

Artificially aligned or positioned functional materials are essential building blocks for modern devices and nanoelectronics. Since the emergence of 2D materials, the vertical stacking/integration of exotic materials has garnered increasing attention. However, controlling homostructures, e.g. identical materials conjoined with varying crystalline orientations, magnetism, or strain states, along the lateral direction remains challenging. Leveraging on the freestanding thin film growth techniques, the concept of twisted lateral homostructures has been introduced, enabling precise control over the lateral alignment of crystalline directions. Here, using La0.7Sr0.3MnO3, a classic strongly correlated material, the precise manipulation of epitaxial strain alongside the homojunction is demonstrated. This leads to a precisely controllable lateral homostructure composed of polymorphic ferromagnetic and antiferromagnetic La0.7Sr0.3MnO3 regions. It is further identified that the interactions between the ferromagnetic and antiferromagnetic regions of La0.7Sr0.3MnO3 lead to unconventional ultrafast spin dynamics and magnetotransport behavior. The results provide a promising platform for developing novel emergent phenomena and functionalities in the twisted lateral homostructures.

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