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Updated: Feb 5, 2026

Fabrication of Surface Acoustic Wave Devices on Lithium Niobate
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Acoustic wave propagation along AlN on Bi12GeO20 structures.

V I Anisimkin1, E Verona2, A S Kuznetsova1

  • 1V.A. Kotel'nikov Institute of Radio Engineering and Electronic, Russian Academy of Sciences, Russia.

Ultrasonics
|September 2, 2018
PubMed
Summary

This study compares surface and Lamb wave propagation in an AlN-coated Bi12GeO20 structure. The researchers find that surface acoustic waves (SAW) are limited to one mode and a narrow range of AlN thickness. In contrast, Lamb waves include multiple modes and can be excited using more transducer configurations. The study shows that Lamb wave velocity and coupling constants depend on mode order, film thickness, and transducer setup. The authors conclude that Lamb waves offer more flexibility and may be better suited for certain applications. The asymmetry of Lamb wave depth profiles may influence device performance. These findings suggest that the structure could be useful in devices requiring multiple wave modes.

Keywords:
Lamb wave propagationAlN film on Bi12GeO20Surface acoustic wave analysisPiezoelectric wave modes

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Area of Science:

  • Acoustic wave propagation in piezoelectric materials
  • Materials science for sensor development
  • Surface and guided wave electromechanics

Background:

Prior research has shown that surface acoustic waves (SAW) are commonly used in sensor and signal processing applications due to their high sensitivity and controllability. However, recent studies have explored alternative wave types, such as Lamb waves, which may offer broader operational ranges and more flexible excitation methods. It was already known that SAW modes are limited in number and excitation options on certain substrates. That uncertainty drove investigations into whether Lamb waves could provide better performance in similar structures. No prior work had resolved how wave characteristics change with film thickness or excitation configuration. This gap motivated the current analysis of AlN-coated Bi12GeO20 structures. Researchers have not yet determined how mode order and transducer configuration affect wave behavior in this system. The need for more detailed comparisons between Lamb and SAW modes remains unmet in the literature.

Purpose Of The Study:

This study aims to compare the properties of Lamb and surface acoustic waves (SAW) in a structure consisting of an AlN film deposited on a Bi12GeO20 substrate. The specific problem addressed is the limited excitation options and narrow operational range of SAW in this material system. The motivation stems from the potential of Lamb waves to offer more versatile wave propagation characteristics. The research focuses on identifying how wave modes depend on film thickness, mode order, and transducer configuration. The goal is to determine whether Lamb waves provide advantages over SAW in this structure. The study also seeks to evaluate how wave velocity and coupling constants change with different parameters. The authors aim to provide a comprehensive comparison of excitation methods and mode behavior. This work addresses the need for a detailed analysis of wave propagation in AlN/Bi12GeO20 systems.

Main Methods:

The study uses numerical calculations to analyze wave propagation in an AlN-coated Bi12GeO20 plate. The researchers model both Lamb and surface acoustic wave modes using computational methods. They calculate key characteristics such as velocity and coupling constants for each mode. The analysis includes variations in AlN film thickness and transducer configurations. The team compares the results for SAW and Lamb waves in the same structure. They examine how mode order affects wave behavior and excitation options. The study also investigates the influence of plate thickness and film thickness on wave properties. The researchers use interdigital transducer (IDT) configurations to simulate wave excitation.

Main Results:

The study finds that only one SAW mode exists in the AlN/Bi12GeO20 structure. This mode is limited to a narrow range of AlN thickness and can be excited using four transducer configurations. The velocity of the SAW mode is higher than in the uncoated Bi12GeO20 substrate, but the coupling constants are lower. In contrast, Lamb waves exhibit multiple modes of different orders. These modes exist across a wide range of AlN thickness and can be excited using twelve IDT configurations. The velocities and coupling constants of Lamb waves may be either larger or smaller than in the uncoated plate. The characteristics of Lamb waves depend on mode order, film thickness, plate thickness, and transducer configuration. Additionally, the depth profiles of Lamb waves are neither symmetrical nor anti-symmetrical.

Conclusions:

The authors conclude that Lamb waves offer more flexibility than SAW in the AlN/Bi12GeO20 structure. They note that Lamb waves can be excited using more transducer configurations and exist over a wider range of AlN thickness. The study shows that wave velocity and coupling constants vary with mode order and film thickness. The authors propose that Lamb waves may be more suitable for certain applications due to their broader operational range. They suggest that the structure could be used in devices requiring multiple wave modes. The findings indicate that wave characteristics depend on transducer configuration and plate thickness. The authors emphasize that the asymmetry of Lamb wave depth profiles may influence device performance. They propose that these properties make Lamb waves more attractive for practical use.

SAW modes are limited to one mode and a narrow AlN thickness range, while Lamb waves include multiple modes and a wider thickness range.

Lamb waves can be excited using twelve different interdigital transducer configurations.

The AlN thickness determines the existence and excitation of wave modes, with SAW modes limited to a narrow thickness range.

These factors include mode order, film thickness, plate thickness, and transducer configuration.

No, the depth profiles of Lamb waves are neither symmetrical nor anti-symmetrical.

The authors suggest that the structure could be used in devices requiring multiple wave modes and flexible excitation options.