Generalized semi-analytical modeling of three-dimensional contact responses in piezoelectric semiconductors with conductive indenters

  • Ling WANG ,
  • Huoming SHEN ,
  • Yuxing WANG
Expand
  • 1.School of Architecture and Civil Engineering, Xihua University, Chengdu 610039, China
    2.School of Mechanics and Aerospace Engineering, Southwest Jiaotong University, Chengdu 611756, China
    3.School of Automation, Chengdu University of Information Technology, Chengdu 610225, China
    4.School of Mechanical Engineering, Southwest Jiaotong University, Chengdu 611756, China
Yuxing WANG, E-mail: wangyuxing1991@163.com

Received date: 2025-10-02

  Revised date: 2025-12-25

  Online published: 2026-03-02

Supported by

Project supported by the National Natural Science Foundation of China (No. 12402113) and the Sichuan Science and Technology Program (No. 2024NSFSC0037)

Copyright

©Shanghai University 2026

Abstract

Piezoelectric semiconductor (PSC) materials exhibit strong electromechanical coupling affected by free carriers, which makes their contact behavior essential for sensors, actuators, and electronic devices. Analytical models for three-dimensional (3D) PSC contact problems are still scarce, especially for conductive indenters. This work develops a semi-analytical framework to study the 3D frictionless contact between a conductive indenter and a PSC half-space. Fundamental solutions under a unit force and a unit electric charge are derived, and the corresponding frequency response functions are combined with a discrete convolution-fast Fourier transform (DC-FFT) algorithm to achieve an efficient semi-analytical contact model. The numerical results demonstrate that an increase in the surface charge density reduces the indentation pressure and modifies the electric potential distribution. A higher steady carrier concentration enhances the screening effect, suppresses the electromechanical coupling, and shifts the system response toward purely elastic behaviors. The sensitivity analysis shows that the indentation depth is dominated by the elastic constants, while the electric potential is mainly affected by the piezoelectric coefficient. Although the analysis is carried out with spherical indenters, the model is not limited to a specific indenter shape. It provides an effective tool for investigating complex 3D PSC contact problems and offers useful insights into the design of PSC materials-based devices.

Cite this article

Ling WANG , Huoming SHEN , Yuxing WANG . Generalized semi-analytical modeling of three-dimensional contact responses in piezoelectric semiconductors with conductive indenters[J]. Applied Mathematics and Mechanics, 2026 , 47(3) : 555 -572 . DOI: 10.1007/s10483-026-3358-8

References

[1] WU, W., WEN, X., and WANG, Z. L. Taxel-addressable matrix of vertical-nanowire piezotronic transistors for active and adaptive tactile imaging. Science, 340(6135), 952–957 (2013)
[2] LI, Y., FENG, J., ZHAO, Y., WANG, J., and XU, C. Ultrathin flexible linear-piezoelectric ZnO thin film actuators: tuning the piezoelectric responses by in-plane epitaxial strain. Applied Surface Science, 599, 153969 (2022)
[3] ZHOU, Y. S., WANG, K., HAN, W., RAI, S. C., ZHANG, Y., DING, Y., PAN, C., ZHANG, F., ZHOU, W., and WANG, Z. L. Vertically aligned CdSe nanowire arrays for energy harvesting and piezotronic devices. ACS Nano, 6(7), 6478–6482 (2012)
[4] HAN, C., LU, C., ZHAO, M., and ZHANG, Q. Nonlinear finite element analysis of electromechanical behaviors in a piezoelectric semiconductor beam. International Journal of Non-Linear Mechanics, 149, 104311 (2023)
[5] ZHANG, Q., LI, M., and ZHAO, M. Dynamic analysis of a piezoelectric semiconductor nanoplate with surface effect. Materials Today Communications, 33, 104406 (2022)
[6] ZHAO, M., UMAIR, M., LU, C., and QIN, G. Electric current-restrained crack propagation in brittle GaN ceramics. Journal of Materials Science, 56(9), 5730–5735 (2021)
[7] LI, D., ZHANG, C., ZHANG, S., WANG, H., CHEN, W., and ZHANG, C. Propagation of terahertz elastic longitudinal waves in piezoelectric semiconductor rods. Ultrasonics, 132, 106964 (2023)
[8] LIU, Y., ZHANG, Y., YANG, Q., NIU, S., and WANG, Z. L. Fundamental theories of piezotronics and piezo-phototronics. Nano Energy, 14, 257–275 (2015)
[9] QIN, G., ZHANG, X., MA, S., ZHANG, Q., FAN, C., and ZHAO, M. An accurate computational method for analysis of electromechanical properties of structures with metal-GaN piezoelectric semiconductor contact. Computational Materials Science, 152, 70–77 (2018)
[10] GAO, S., ZHANG, L., LIU, J., NIE, G., and CHEN, W. Indentation behavior of a semi-infinite piezoelectric semiconductor under a rigid flat-ended cylindrical indenter. Applied Mathematics and Mechanics (English Edition), 45(4), 649–662 (2024) https://doi.org/10.1007/s10483-024-3107-5
[11] GAO, S., ZHANG, Z., NIE, G., LIU, J., and CHEN, W. Indentation responses of piezoelectric semiconductors. International Journal of Solids and Structures, 290, 112682 (2024)
[12] GAO, S., JU, C., NIE, G., LIU, J., and CHEN, W. Indentation response characteristics of a piezoelectric semiconductor layer. International Journal of Mechanical Sciences, 286, 109809 (2025)
[13] GAO, S., NIE, G., LIU, J., and CHEN, W. Spherical indentation on a piezoelectric semiconductor film/elastic substrate system. Acta Mechanica Solida Sinica, 38(5), 872–883 (2025)
[14] POLONSKY, I. A. and KEER, L. M. A numerical method for solving rough contact problems based on the multi-level multi-summation and conjugate gradient techniques. Wear, 231(2), 206–219 (1999)
[15] LIU, S., WANG, Q., and LIU, G. A versatile method of discrete convolution and FFT (DC-FFT) for contact analyses. Wear, 243(1-2), 101–111 (2000)
[16] LIU, S. and WANG, Q. Studying contact stress fields caused by surface tractions with a discrete convolution and fast Fourier transform algorithm. Journal of Tribology, 124(1), 36–45 (2002)
[17] WANG, Q. J., SUN, L., ZHANG, X., LIU, S., and ZHU, D. FFT-based methods for computational contact mechanics. Frontiers in Mechanical Engineering, 6, 61 (2020)
[18] MA, L., LI, X., LI, Y., PAN, B., TIAN, Y., SHEN, Y., DING, S., and ZHANG, X. Impact of frictional heat and electric charge on the thermomechanical contact properties of piezoelectric quasicrystals: a DC-FFT algorithm. Materials Today Communications, 41, 110721 (2024)
[19] HUANG, R., DING, S., CHEN, Q., LV, C., ZHANG, X., and LI, X. Sliding frictional contact of one dimensional hexagonal piezoelectric quasicrystals coating on piezoelectric substrate with imperfect interface. International Journal of Solids and Structures, 239, 111423 (2022)
[20] WANG, Y., SHEN, H., LI, J., WANG, L., LIU, J., WANG, J., and LIU, H. Three-dimensional frictional contact within the framework of couple stress elasticity. Applied Mathematical Modelling, 131, 288–305 (2024)
[21] WANG, Y., ZHANG, X., SHEN, H., LIU, J., and ZHANG, B. Couple stress-based 3D contact of elastic films. International Journal of Solids and Structures, 191, 449–463 (2020)
[22] WANG, Y., ZHANG, X., SHEN, H., LIU, J., ZHANG, B., and XU, S. Three-dimensional contact analysis with couple stress elasticity. International Journal of Mechanical Sciences, 153, 369–379 (2019)
[23] WANG, Z. J., WANG, W. Z., MENG, F. M., and WANG, J. X. Fretting contact analysis on three-dimensional elastic layered half space. Journal of Tribology, 133(3), 031401 (2011)
[24] WANG, Y., ZHANG, X., KEER, L. M., and SHEN, H. Sub-Rayleigh elastodynamic frictional contact of a layer-substrate system. Tribology International, 148, 106299 (2020)
[25] CHENG, A., SUN, L., MENGA, N., YANG, W., and ZHANG, X. Interfacial performance evolution of ceramics-in-polymer composite electrolyte in solid-state lithium metal batteries. International Journal of Engineering Science, 204, 104137 (2024)
[26] HU, Y., ZENG, Y., and YANG, J. A mode III crack in a piezoelectric semiconductor of crystals with 6?mm symmetry. International Journal of Solids and Structures, 44(11-12), 3928–3938 (2007)
[27] SLADEK, J., SLADEK, V., BISHAY, P. L., and GARCIA-SANCHEZ, F. Influence of electric conductivity on intensity factors for cracks in functionally graded piezoelectric semiconductors. International Journal of Solids and Structures, 59, 79–89 (2015)
[28] DING, H., CHEN, W., and ZHANG, L. Elasticity of Transversely Isotropic Materials, Springer Dordrecht, Netherlands (2006)
[29] SUI, Y., WANG, W., ZHANG, H., and LIANG, H. 3D frictional contact of graded magneto-electro-elastic film-substrate system under electromagnetic fields. International Journal of Solids and Structures, 269, 112217 (2023)
[30] BARBER, J. R. Contact Mechanics, Springer Cham, Switzerland (2018)
[31] WANG, Y., SHEN, H., ZHANG, X., ZHANG, B., LIU, J., and LI, X. Semi-analytical study of microscopic two-dimensional partial slip contact problem within the framework of couple stress elasticity: cylindrical indenter. International Journal of Solids and Structures, 138, 76–86 (2018)
[32] MAKAGON, A., KACHANOV, M., KALININ, S. V., and KARAPETIAN, E. Indentation of spherical and conical punches into piezoelectric half-space with frictional sliding: applications to scanning probe microscopy. Physical Review B, 76(6), 064115 (2007)
[33] ZHANG, X., HE, T., MIWA, H., NANBU, T., MURAKAMI, R., LIU, S., CAO, J., and WANG, Q. J. A new approach for analyzing the temperature rise and heat partition at the interface of coated tool tip-sheet incremental forming systems. International Journal of Heat and Mass Transfer, 129, 1172–1183 (2019)
Outlines

/

APS Journals | CSTAM Journals | AMS Journals | EMS Journals | ASME Journals