低损耗铌酸锂薄膜在蓝宝石剪切水平表面声波器件上的低温表征

IF 3 2区 工程技术 Q1 ACOUSTICS
Zhi-Qiang Lee;Jyothish Raj;Kongbrailatpam Sandeep Sharma;Gayathri Pillai;Ming-Huang Li
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引用次数: 0

摘要

本文报道了一种基于新型y型切割$\mathrm{LiNbO}_3 / \mathrm{SiO}_2 /$蓝宝石铌酸锂(LNOS)平台的宽带剪切水平表面声波(SH-SAW)器件的低温研究。为了进行全面的研究,设计了配备单向换能器的低损耗声学延迟线(adl),其波长($\lambda$)为$4 \mu \mathrm{~m}(900 \mathrm{MHz}$,宽分数带宽(FBW)约为$7 \%$,具有从$5 \lambda$到$200 \lambda$的各种物理延迟作为测试结构。通过将温度降至5 K,最长ADL的插入损耗(IL)和提取的传播损耗(PL)分别表征为$4.1 \mathrm{~dB} / \mathrm{mm}$和$3.5 \mathrm{~dB} / \mathrm{mm}$。与275 K时5.78 dB的声压差和$4.37 \mathrm{~dB} / \mathrm{mm}$的声压差相比,低温下温度相关的声损失减小,整体声压差由层间声速失配形成的声波导主导。此外,使用相同的技术还表征了具有大于$40 \%$的大感知有效机电耦合的单端口谐振器$(\lambda=2.8 \mu \mathrm{~m})$,在低温下显示出最大Bode- $Q$的$2 x$提升。本研究不仅表征了宽带LNOS SH-SAW器件的声学特性,而且验证了其在宽温度范围内的优异性能,表明其在低温声子电路中的潜在应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cryogenic Characterization of Low-Loss Thin-Film Lithium Niobate on Sapphire Shear Horizontal Surface Acoustic Wave Devices
This article reports a cryogenic study on wideband shear horizontal surface acoustic wave (SH-SAW) devices based on an emerging Y-cut $\mathrm{LiNbO}_3 / \mathrm{SiO}_2 /$ sapphire lithium niobate on sapphire (LNOS) platform. To perform a comprehensive study, low-loss acoustic delay lines (ADLs) equipped with unidirectional transducers were designed with a wavelength ( $\lambda$ ) of $4 \mu \mathrm{~m}(900 \mathrm{MHz}$ ) and a wide fractional bandwidth (FBW) of around $7 \%$ , featuring various physical delays ranging from $5 \lambda$ to $200 \lambda$ as testing structures. By cooling the temperature down to 5 K, the insertion loss (IL) of the longest ADL and the extracted propagation loss (PL) were characterized as $4.1 \mathrm{~dB} / \mathrm{mm}$ and $3.5 \mathrm{~dB} / \mathrm{mm}$ , respectively. Compared with an IL of 5.78 dB and a PL of $4.37 \mathrm{~dB} / \mathrm{mm}$ at 275 K, the temperature-dependent acoustic losses diminish at low temperatures, with the overall PL dominated by the acoustic waveguide formed by the acoustic velocity mismatch between layers. Furthermore, a one-port resonator $(\lambda=2.8 \mu \mathrm{~m})$ with a large perceived effective electromechanical coupling greater than $40 \%$ was also characterized using the same technique, showing a $2 x$ boost in the maximum Bode- $Q$ at cryogenic temperatures. This study not only characterized the acoustic properties of wideband LNOS SH-SAW devices but also validated their excellent performance across a wide temperature range, suggesting their potential applications in cryogenic phononic circuits.
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来源期刊
CiteScore
7.70
自引率
16.70%
发文量
583
审稿时长
4.5 months
期刊介绍: IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control includes the theory, technology, materials, and applications relating to: (1) the generation, transmission, and detection of ultrasonic waves and related phenomena; (2) medical ultrasound, including hyperthermia, bioeffects, tissue characterization and imaging; (3) ferroelectric, piezoelectric, and piezomagnetic materials, including crystals, polycrystalline solids, films, polymers, and composites; (4) frequency control, timing and time distribution, including crystal oscillators and other means of classical frequency control, and atomic, molecular and laser frequency control standards. Areas of interest range from fundamental studies to the design and/or applications of devices and systems.
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