Applied Mathematics and Mechanics >
Dispersion, attenuation, and bandgap of in-plane coupled Bloch waves in piezoelectric semiconductor phononic crystal with PN junction
Received date: 2024-09-03
Revised date: 2025-03-18
Online published: 2025-05-07
Supported by
Project supported by the National Natural Science Foundation of China (Nos. 11872105, 12072022, 11911530176, and 12202039)
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In this paper, the dispersion, attenuation, and bandgap characteristics of in-plane coupled Bloch waves in one-dimensional piezoelectric semiconductor (PSC) phononic crystals are investigated, emphasizing the influence of positive-negative (PN) junctions. Unlike piezoelectric phononic crystals, the coupled Bloch waves in PSC phononic crystals are attenuated due to their semiconductor properties, and thus the solution of Bloch waves becomes more complicated. The transfer matrix of the phononic crystal unit cell is obtained using the state transfer equation. By applying the Bloch theorem for periodic structures, the dispersion relation of the coupled Bloch waves is derived, and the dispersion, attenuation, and bandgap are obtained in the complex wave number domain. It is found that the influence of the PN junction cannot be neglected. Moreover, the effects of the PN junction under different apparent wave numbers and steady-state carrier concentrations are provided. This indicates the feasibility of adjusting the propagation characteristics of Bloch waves through the regulation of the PN heterojunction.
Zibo WEI, Peijun WEI, Chunyu XU, Xiao GUO . Dispersion, attenuation, and bandgap of in-plane coupled Bloch waves in piezoelectric semiconductor phononic crystal with PN junction[J]. Applied Mathematics and Mechanics, 2025 , 46(5) : 813 -830 . DOI: 10.1007/s10483-025-3252-7
| [1] | KIM, K., KIM, J., JIANG, X. N., and KIM, T.Static force measurement using piezoelectric sensors. Journal of Sensors, 2021, 6664200 (2021) |
| [2] | CHEN, J., CHEN, D. Y., and WANG, J. B.Higher-frequency harmonic response of piezoelectric resonant filter. Nanotechnology and Precision Engineering, 5(1), 11–14 (2007) |
| [3] | JING, D., HU, S. Z., NAN, Y., MA, C. C., ZHANG, Z. W., SHAO, M. Y., and SHAO, S. J.Design and test of liquid sloshing piezoelectric energy harvester. Advances in Mechanical Engineering, 16(5), 16878132241248999 (2024) |
| [4] | HUANG, T., ZHAO, Y. C., and LI, L. L.Piezoelectric semiconductor nanomaterials in sonodynamic therapy: a review. Journal of Inorganic Materials, 37(11), 1170–1180 (2022) |
| [5] | CHEN, L., ZHANG, K., DONG, J. Q., WANG, B. Y., HE, L. F., WANG, Q., HE, M., and WANG, X. F.The piezotronic effect in InGaN/GaN quantum-well based microwire for ultrasensitive strain sensor. Nano Energy, 72, 104660 (2020) |
| [6] | DAHIYA, R. S., METTA, G., VALLE, M., ADAMI, A., and LORENZELLI, L.Piezoelectric oxide semiconductor field effect transistor touch sensing devices. Applied Physics Letters, 95(3), 034105 (2009) |
| [7] | HUTSON, A. R. and WHITE, D. L.Elastic wave propagation in piezoelectric semiconductors. Journal of Applied Physics, 33(1), 40–47 (1962) |
| [8] | SUN, L., ZHANG, Z. C., GAO, C. F., and ZHANG, C. L.Effect of flexoelectricity on piezotronic responses of a piezoelectric semiconductor bilayer. Journal of Applied Physics, 129(24), 244102 (2021) |
| [9] | CHEN, T., ZHANG, X. M., ZHOU, H. M., and YU, J. G.Characteristics of complete circumferential guided wave in a piezoelectric semiconductor cylindrical shell. Journal of Intelligent Material Systems and Structures, 34(6), 733–748 (2023) |
| [10] | WANG, W. H., LI, L., LAN, M., and DU, J. H.SH waves in a half-space model of functionally gradient piezoelectric semiconductors with initial stresses. Ferroelectrics Letters Section, 50(4-6), 91–101 (2023) |
| [11] | RAMPAL, A. and KLEIMAN, R. N.Optical actuation of a micromechanical photodiode via the photovoltaic-piezoelectric effect. Microsystems & Nanoengineering, 7(1), 29 (2021) |
| [12] | CHI, M. S., ZHAO, Y. L., ZHANG, X., JIA, M. M., YU, A. F., WANG, Z. L., and ZHAI, J. Y.A piezotronic and magnetic dual-gated ferroelectric semiconductor transistor. Advanced Functional Materials, 33(46), 2307901 (2023) |
| [13] | DING, Y. J., JI, C., YANG, J. H., XU, M., and YANG, X. H.Design and application of flexible piezoelectric organic thin-film transistor sensing system. Sensors and Materials, 33(2), 541–554 (2021) |
| [14] | FAN, S. Q., YANG, W. L., and HU, Y. T.Adjustment and control on the fundamental characteristics of a piezoelectric PN junction by mechanical-loading. Nano Energy, 52, 416–421 (2018) |
| [15] | YANG, W. L., HONG, R. Z., YANG, H. Z., and HU, Y. T.A high performance piezoelectric hetero-junction based on the configuration reform on interfacial potential barrier. Composite Structures, 328, 117723 (2024) |
| [16] | YANG, Y. Z., YANG, W. L., WANG, Y. B., ZENG, X. B., and HU, Y. T.A mechanically induced artificial potential barrier and its tuning mechanism on performance of piezoelectric PN junctions. Nano Energy, 92, 106741 (2022) |
| [17] | YANG, W. L., HONG, R. Z., WANG, Y. B., and HU, Y. T.Effects of mechanical loadings on the performance of a piezoelectric hetero-junction. Applied Mathematics and Mechanics (English Edition), 43(5), 615–626 (2022) https://doi.org/10.1007/s10483-022-2848-7 |
| [18] | CHENG, R. R., ZHANG, C. L., CHEN, W. Q., and YANG, J. S.Temperature effects on PN junctions in piezoelectric semiconductor fibers with thermoelastic and pyroelectric couplings. The Journal of Electronic Materials, 49(5), 3140–3148 (2020) |
| [19] | WEI, Z. B., WEI, P. J., XU, C. Y., and GUO, X.Influences of piezoelectric positive-negative junction on the multi-field coupled waves propagation in the piezoelectric semiconductor. The Journal of the Acoustical Society of America, 152(3), 1883–1900 (2022) |
| [20] | WEI, Z. B., WEI, P. J., XU, C. Y., and GUO, X.Equivalent imperfect interface model of PN junction of piezoelectric semiconductor for the multi-field coupled waves propagation. Acta Mechanica, 235(1), 73–92 (2024) |
| [21] | ZHU, Y., ZHAO, Y. X., and CAO, P.Second harmonic modulation for ultrasonic signals based on the design of the phononic crystal filter. Sensors, 23(22), 9227 (2023) |
| [22] | KANNO, Y., TSURUTA, K., FUJIMORI, K., FUKANO, H., and NOGI, S.Phononic-crystal acoustic lens by design for energy-transmission devices. Electronics and Communications in Japan, 97(1), 22–27 (2014) |
| [23] | GUO, X., WEI, P. J., XU, M. X., 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) |
| [24] | GUO, X. and WEI, P. J.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) |
| [25] | YANG, G. Y., ZHANG, M. H., DU, J. K., and CHEN, X.Band structure of love wave in a one-dimensional piezoelectric layered phononic crystal with imperfect interface. Mechanics of Advanced Materials and Structures, 30(6), 1181–1187 (2023) |
| [26] | CAO, D. X., HU, W. H., GAO, Y. H., and GUO, X. Y.Vibration and energy harvesting performance of a piezoelectric phononic crystal beam. Smart Materials and Structures, 28(8), 085014 (2019) |
| [27] | 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) |
| [28] | BLANES, S., CASAS, F., OTEO, J. A., and ROS, J.The Magnus expansion and some of its applications. Physics Reports-Review Section of Physics Letters, 470(5-6), 151–238 (2009) |
| [29] | GUO, X., WEI, P. J., and LI, L.Dispersion relations of elastic waves in one-dimensional piezoelectric phononic crystal with mechanically and dielectrically imperfect interfaces. Mechanics of Materials, 93, 168–183 (2016) |
| [30] | VEAL, T. D., KING, P. D. C., HATFIELD, S. A., BAILEY, L. R., MCCONVILLE, C. F., MARTEL, B., MORENO, J. C., FRAYSSINET, E., SEMOND, F., and Zú?IGA-PéREZ, J.Valence band offset of the ZnO/AlN heterojunction determined by X-ray photoemission spectroscopy. Applied Physics Letters, 93(20), 202108 (2008) |
| [31] | BARNES, T. M., OLSON, K., and WOLDEN, C. A.On the formation and stability of P-type conductivity in nitrogen-doped zinc oxide. Applied Physics Letters, 86(11), 112112 (2005) |
| [32] | QIN, G. S., MA, S. J., LU, C., WANG, G., and ZHAO, M. H.Influence of electric field and current on the strength of depoled GaN piezoelectric semiconductive ceramics. Ceramics International, 44(4), 4169–4175 (2018) |
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