Advancements in lamb wave high-frequency devices using diamond-like carbon (DLC) coatings

IF 3.8 Q2 CHEMISTRY, PHYSICAL
Jatinder Pal Singh , Ajay Kumar Sao , Babita Sharma , Satyam Garg , Anjali Sharma , Reema Gupta , Lokesh Rana , Mallika Verma , Akhilesh Pandey , Archibald Theodore Nimal , Upendra Mittal , Amit Kumar Vishwakarma , Monika Tomar , Arijit Chowdhuri
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Abstract

Diamond-like carbon (DLC) stands as a material of profound scientific and technological importance, owing to its exceptional blend of mechanical, tribological, and chemical properties. Lamb wave devices, vital in sensing, communication, and structural health monitoring, require efficient surface acoustic wave (SAW) propagation for their diverse applications. Theoretical studies suggest that DLC coatings can accelerate SAWs due to their high elastic constant and low mass density, making them highly desirable for enhancing SAW device performance. In the present work, a process for reliable deposition of DLC films on the SiO2/Si membrane has been investigated, aiming to optimize their functionality. MEMS (micro-electromechanical system) technology was adopted for the development of SiO2/Si membrane-based Lamb wave devices utilising piezoelectric ZnO thin film and high-velocity DLC coating. The DLC films were coated on the SiO2/Si membrane using the Hot Filament Chemical Vapor Deposition (HFCVD) method followed by deposition of a piezoelectric layer of ZnO film through RF magnetron sputtering. The patterning of aluminium electrodes for the fabrication of Lamb wave devices was carried out using lithography. The frequency response of the Lamb wave devices prepared without and with DLC coatings was studied and it was found that the Lamb wave devices without DLC coatings showed a return loss of -27.97 dB at a frequency of 286 MHz. However, with the incorporation of DLC coating, the frequency increased to 345 MHz with a lower return loss of -19.46 dB. The outcomes of this research underscore the potential of DLC coatings to optimize the Lamb wave device functionalities, promising enhanced performance and broader applications. Continued exploration and refinement in this field hold promise for further enhancing DLC coatings and broadening the scope of Lamb wave device applications.

Abstract Image

类金刚石(DLC)涂层lamb波高频器件的进展
类金刚石碳(DLC)是一种具有深远科学和技术重要性的材料,因为它具有特殊的机械、摩擦学和化学特性。Lamb波器件在传感、通信和结构健康监测中至关重要,其各种应用需要有效的表面声波(SAW)传播。理论研究表明,DLC涂层由于其高弹性常数和低质量密度,可以加速SAW,使其成为提高SAW器件性能的理想选择。在本工作中,研究了一种在SiO2/Si膜上可靠沉积DLC膜的工艺,旨在优化其功能。利用压电ZnO薄膜和高速DLC涂层,采用MEMS(微机电系统)技术开发了基于SiO2/Si膜的Lamb波器件。采用热丝化学气相沉积(HFCVD)方法将DLC薄膜涂覆在SiO2/Si薄膜上,然后通过射频磁控溅射沉积ZnO薄膜的压电层。利用光刻技术对用于制造兰姆波器件的铝电极进行了图案化。研究了无DLC涂层和有DLC涂层的Lamb波器件的频率响应,发现无DLC涂层的Lamb波器件在286 MHz频率下的回波损失为-27.97 dB。然而,随着DLC涂层的加入,频率增加到345 MHz,回波损耗降低到-19.46 dB。这项研究的结果强调了DLC涂层优化Lamb波器件功能的潜力,有望提高性能和更广泛的应用。在这一领域的持续探索和改进有望进一步增强DLC涂层,扩大兰姆波器件的应用范围。
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来源期刊
Chemical Physics Impact
Chemical Physics Impact Materials Science-Materials Science (miscellaneous)
CiteScore
2.60
自引率
0.00%
发文量
65
审稿时长
46 days
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