Applied Mathematics and Mechanics >
Influence of a cylindrical PN junction on the propagation characteristics of shear cylindrical waves in a layered piezoelectric semiconductor concentric cylinder structure
Received date: 2025-04-24
Revised date: 2025-06-24
Online published: 2025-07-28
Supported by
Project supported by the National Natural Science Foundation of China (Nos. 12202039, 52204085, and 52474123)
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This paper theoretically investigates the influence of a cylindrical PN junction on the propagation characteristics of shear cylindrical waves (SCWs) in an infinitely long piezoelectric semiconductor (PS) concentric cylinder structure. This PS concentric cylinder structure is composed of three regions: an inner PS cylinder, an outer PS cylindrical shell, and a cylindrical PN junction at the interface between the two aforementioned regions. First, the basic equations of the PS concentric cylinder structure are derived, taking into account the coupling of the mechanical displacement, electric potential, and charge carrier perturbation in the cylindrical coordinate system. Next, a mathematical model for the SCWs in this PS concentric cylinder structure is established, utilizing the spectral method and considering the physical characteristics of the cylindrical PN junction. Finally, the dispersion and attenuation curves of the SCWs are numerically calculated to discuss the influence of the interface effect resulting from the cylindrical PN junction. It is found that the existence of a cylindrical PN junction can either reduce or enhance the mechanical-to-electrical energy conversion, which is closely related to the doping mode, doping concentration, and curvature radius of the cylindrical interface. A reasonable design of the aforementioned parameters can optimize the wave motion in acoustic equipment formed by PS media with different frequencies or wavelengths. The construction and resolution of the mathematical model as well as the analysis of physical mechanisms can offer theoretical guidance for improving the efficiency of energy conversion from mechanical energy to electrical energy and optimizing the acoustic performance of energy harvesting devices.
Ruiyang LIU , Xiao GUO , Chunyu XU , Zibo WEI , Chenxi DING . Influence of a cylindrical PN junction on the propagation characteristics of shear cylindrical waves in a layered piezoelectric semiconductor concentric cylinder structure[J]. Applied Mathematics and Mechanics, 2025 , 46(8) : 1551 -1570 . DOI: 10.1007/s10483-025-3286-9
| [1] | ZHANG, Z., XIANG, H., and SHI, Z. Mechanism exploration of piezoelectric energy harvesting from vibration in beams subjected to moving harmonic loads. Composite Structures, 179, 368–376 (2017) |
| [2] | PAKNEJAD, A., RAHIMI, G., and SALMANI, H. Analytical solution and numerical validation of piezoelectric energy harvester patch for various thin multilayer composite plates. Archive of Applied Mechanics, 88, 1139–1161 (2018) |
| [3] | YANG, G., ZHANG, M., HU, J., HUANG, B., XU, M., ZHU, Z., and DU, J. Effects of initial stress on band gap of Love waves in a layered domain-inverted phononic crystal structure. Ultrasonics, 106, 106145 (2020) |
| [4] | OTHMANI, C. and ZHANG, H. Lamb wave propagation in anisotropic multilayered piezoelectric laminates made of PVDF-θ° with initial stresses. Composite Structures, 240, 112085 (2020) |
| [5] | GURTIN, M. E. and MURDOCH, A. I. A continuum theory of elastic material surfaces. Archive for Rational Mechanics and Analysis, 57, 291–323 (1975) |
| [6] | MURDOCH, A. I. The propagation of surface waves in bodies with material boundaries. Journal of the Mechanics and Physics of Solids, 24, 137–146 (1976) |
| [7] | GURTIN, M. E. and MURDOCH A. I. Surface stress in solids. International Journal of Solids and Structures, 14, 431–440 (1978) |
| [8] | XIANG, H. J., YANG, J. L., HOU, J. G., and ZHU, Q. S. Piezoelectricity in ZnO nanowires: a first-principles study. Applied Physics Letters, 89, 223111–223113 (2006) |
| [9] | ZHANG, Y. H., HONG, J. W., LIU, B., and FANG, D. N. Strain effect on ferroelectric behaviors of BaTiO3 nanowires: a molecular dynamics study. Nanotechnology, 21(1), 015701 (2010) |
| [10] | DAI, S., DUNN, M. L., and PARK, H. S. Piezoelectric constants for ZnO calculated using classical polarizable core-shell potentials. Nanotechnology, 21(44), 445707 (2010) |
| [11] | HE, J. H., HSIN, C. L., LIU, J., CHEN, L. J., and WANG, Z. L. Piezoelectric gated diode of a single ZnO nanowire. Advanced Materials, 19, 781–784 (2007) |
| [12] | AGRAWAL, R., PENG, B., GDOUTOS, E. E., and ESPINOSA, H. D. Elasticity size effects in ZnO nanowires — a combined experimental-computational approach. Nano Letters, 8, 3668–3674 (2008) |
| [13] | YANG, Y., GUO, W., WANG, X. Q., WANG, Z. Z., QI, J. J., and ZHANG, Y. Size dependence of dielectric constant in a single pencil-like ZnO nanowire. Nano Letters, 12, 1919–1922 (2012) |
| [14] | JIAO, F., WEI, P., ZHOU, Y., and ZHOU, X. Wave propagation through a piezoelectric semiconductor slab sandwiched by two piezoelectric half-spaces. European Journal of Mechanics-A/Solids, 75, 70–81 (2019) |
| [15] | JIAO, F., WEI, P., ZHOU, X., and ZHOU, Y. The dispersion and attenuation of the multi-physical fields coupled waves in a piezoelectric semiconductor. Ultrasonics, 92, 68–78 (2019) |
| [16] | CAO, X., HU, S., LIU, J., and SHI, J. Generalized Rayleigh surface waves in a piezoelectric semiconductor half space. Meccanica, 54, 271–281 (2019) |
| [17] | TIAN, R., LIU, J., PAN, E., WANG, Y., and SOH, A. K. Some characteristics of elastic waves in a piezoelectric semiconductor plate. Journal of Applied Physics, 126, 125701 (2019) |
| [18] | TIAN, R., LIU, J., PAN, E., and WANG, Y. SH waves in multilayered piezoelectric semiconductor plates with imperfect interfaces. European Journal of Mechanics-A Solids, 81, 103961 (2020) |
| [19] | FAN, S., YANG, W., and HU, Y. Adjustment and control on the fundamental characteristics of a piezoelectric PN junction by mechanical-loading. Nano Energy, 52, 416–421 (2018) |
| [20] | FANG, K., LI, P., LI, N., LIU, D., QIAN, Z., KOLESOV, V., and KUZNETSOVA, I. Impact of PN junction inhomogeneity on the piezoelectric fields of acoustic waves in piezo-semiconductive fibers. Ultrasonics, 120, 106660 (2022) |
| [21] | GUO, X., WEI, P., XU, M., and LAN, M. Dispersion relations of anti-plane elastic waves in micro-scale one dimensional piezoelectric semiconductor phononic crystals with the consideration of interface effect. Mechanics of Materials, 161, 104000 (2021) |
| [22] | LAN, M., GUO, X., and LI, L. Effects of homojunction on the reflected and transmitted waves at the interface between two thermoelastic semiconductor half spaces. Applied Mathematical Modelling, 110, 61–77 (2022) |
| [23] | WEI, Z., WEI, P., XU, C., and GUO, X. Influences of piezoelectric positive-negative junction on the multi-field coupled waves propagation in the piezoelectric semiconductor. Journal of the Acoustical Society of America, 152, 1883–1900 (2022) |
| [24] | XU, C. Y., WEI, P. J., WEI, Z. B., and GUO, X. Rayleigh wave in layered piezoelectric semiconductor with consideration of PN junction effects. Mathematics and Mechanics of Solids, 28(8), 1817–1833 (2023) |
| [25] | ENZEVAEE, C. and SHODJA, H. M. Torsional surface wave propagation in a transversely isotropic FG substrate with piezoelectric over-layer within surface/interface theory. Acta Mechanica, 231, 2203–2216 (2020) |
| [26] | ZHANG, L. L., LIU, J. X., FANG, X. Q., and NIE, G. Q. Size-dependent dispersion characteristics in piezoelectric nanoplates with surface effects. Physica E: Low-Dimensional Systems and Nanostructures, 57, 169–174 (2014) |
| [27] | ZHANG, L. L., LIU, J. X., FANG, X. Q., and NIE, G. Q. Effects of surface piezoelectricity and nonlocal scale on wave propagation in piezoelectric nanoplates. European Journal of Mechanics-A/Solids, 46, 22–29 (2014) |
| [28] | ZHANG, L. L., ZHAO, J., LIU, X. L., and LIU, J. X. Shear horizontal surface waves in piezoelectric materials with surface stress. Philosophical Magazine Letters, 98, 350–357 (2018) |
| [29] | WANG, X., LI, P., and JIN, F. A generalized dynamic model of nanoscale surface acoustic wave sensors and its applications in Love wave propagation and shear-horizontal vibration. Applied Mathematical Modelling, 75, 101–115 (2019) |
| [30] | GUO, X. and WEI, P. Dispersion relations of in-plane elastic waves in nano-scale one dimensional piezoelectric semiconductor/piezoelectric dielectric phononic crystal with the consideration of interface effect. Applied Mathematical Modelling, 96, 189–214 (2021) |
| [31] | LAN, M., GUO, X., and LI, L. Effects of homojunction on the reflected and transmitted waves at the interface between two thermoelastic semiconductor half spaces. Applied Mathematical Modelling, 110, 61–77 (2022) |
| [32] | ZHAO, X., QIAN, Z. H., ZHANG, S., and LIU, J. X. Effect of initial stress on propagation behaviors of shear horizontal waves in piezoelectric/piezomagnetic layered cylinders. Ultrasonics, 63, 47–53 (2015) |
| [33] | GUO, X., WEI, P., LI, L., and LAN, M. Effects of functionally graded interlayers on dispersion relations of shear horizontal waves in layered piezoelectric/piezomagnetic cylinders. Applied Mathematical Modelling, 55, 569–582 (2018) |
| [34] | GUO, X., WANG, Y., XU, C., WEI, Z., and DING, C. Influence of homo- and hetero-junctions on the propagation characteristics of radially propagated cylindrical surface acoustic waves in a piezoelectric semiconductor semi-infinite medium. Mathematics, 12, 145 (2024) |
| [35] | GUO, X., WANG, Y., XU, C., WEI, Z., and DING, C. Influence of homo- and hetero-junctions on the propagation characteristics of love waves in a piezoelectric semiconductor semi-infinite medium. Mathematics, 12, 1075 (2024) |
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