材料科学
谐振器
超导电性
微电子机械系统
光电子学
硅
纳米技术
氧化物
制作
工程物理
凝聚态物理
冶金
工程类
病理
物理
医学
替代医学
作者
Nicola Manca,Alexei Kalaboukhov,Alejandro Enrique Plaza,L. Cichetto,Eric Wahlberg,E. Bellingeri,Francesco Bisio,Ф. Ломбарди,D. Marré,L. Pellegrino
标识
DOI:10.1002/adfm.202403155
摘要
Abstract Micro‐mechanical resonators are building blocks of a variety of applications in basic science and consumer electronics. This device technology is mainly based on well‐established and reproducible silicon‐based fabrication processes with outstanding performances in term of mechanical Q ‐factor and sensitivity to external perturbations. Broadening the functionalities of micro‐electro‐mechanical systems (MEMS) by the integration of functional materials is a key step for both applied and fundamental science. However, combining functional materials with silicon‐based devices is challenging. An alternative approach is directly fabricating MEMS based on compounds inherently showing non‐trivial functional properties, such as transition metal oxides. Here, a full‐oxide approach is reported, where a high‐ superconductor YBa 2 Cu 3 O 7 (YBCO) is integrated with high Q ‐factor micro‐bridge resonators made of single‐crystal LaAlO 3 (LAO) thin films. LAO resonators are tensile strained, with a stress of about 350 MPa, show a Q ‐factor above 200k, and have low roughness. YBCO overlayers are grown ex situ by pulsed laser deposition and YBCO/LAO bridges show zero resistance below 78 K and mechanical properties similar to those of bare LAO resonators. These results open new possibilities toward the development of advanced transducers, such as bolometers or magnetic field detectors, as well as experiments in solid state physics, material science, and quantum opto‐mechanics.
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