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  4. A Fast Route Towards Freestanding Single-Crystalline Oxide Thin Films by Using YBa2Cu3O7-x as a Sacrificial Layer
 
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A Fast Route Towards Freestanding Single-Crystalline Oxide Thin Films by Using YBa2Cu3O7-x as a Sacrificial Layer

Journal
Nanoscale Research Letters
Journal Volume
15
Journal Issue
1
Date Issued
2020
Author(s)
Chang Y.-W.; Wu P.-C.; Yi J.-B.; Liu Y.-C.; Chou Y.; Chou Y.-C.; Yang J.-C.
YI-CHIA CHOU  
DOI
10.1186/s11671-020-03402-0
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85089892753&doi=10.1186%2fs11671-020-03402-0&partnerID=40&md5=ce3eb9872db44c1a57c344641791d2bc
https://scholars.lib.ntu.edu.tw/handle/123456789/614660
Abstract
Researchers have long been seeking multifunctional materials that can be adopted for next-generation nanoelectronics, and which, hopefully, are compatible with current semiconductor processing for further integration. Along this vein, complex oxides have gained numerous attention due to their versatile functionalities. Despite the fact that unbounded potential of complex oxides has been examined over the past years, one of the major challenges lies in the direct integration of these functional oxides onto existing devices or targeted substrates that are inherently incompatible in terms of oxide growth. To fulfill this goal, freestanding processes have been proposed, in which wet etching of inserted sacrificial layers is regarded as one of the most efficient ways to obtain epitaxial high-quality thin films. In this study, we propose using an alternative oxide, YBa2Cu3O7 (YCBO), as a sacrificial layer, which can be easily dissolved in light hydrochloric acid in a more efficient way, while protecting selected complex oxides intact. The high epitaxial quality of the selected complex oxide before and after freestanding process using YBCO as a sacrificial layer is comprehensively studied via a combination of atomic force microscopy, X-ray diffraction, transmission electron microscopy, and electrical transports. This approach enables direct integration of complex oxides with arbitrary substrates and devices and is expected to offer a faster route towards the development of low-dimensional quantum materials. © 2020, The Author(s).
Subjects
Atomic force microscopy; Barium compounds; Chromium compounds; Copper compounds; High resolution transmission electron microscopy; Integration; Nanocrystalline materials; Substrates; Thin films; Wet etching; Yttrium barium copper oxides; Direct integration; Electrical transport; Epitaxial quality; Functional oxides; Multi-functional materials; Sacrificial layer; Semiconductor processing; Single-crystalline; Oxide films
Publisher
Springer
Type
journal article

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