Modeling of a photodiode structure based on a heterojunction ZnO/Si

Keywords: photovoltaic cell, photodetector, numerical simulation, electron transport material (ETM), ZnO, heterostructure, SCAPS-1D program

Abstract

In this work, a self-powered photodetector based on a bulk ZnO/Si p–n heterojunction is numerically investigated and analyzed using the Solar Cell Capacitance Simulator in One Dimension (SCAPS-1D). The energy band diagram, electron-hole generation and recombination rates, current-voltage (J–V) characteristics, spectral photosensitivity response, and specific detectivity are examined. To optimize photodetector performance, the effects of absorber layer thickness, shallow acceptor and donor ­densities, and defect density were systematically studied. Various electron transport parameters of ZnO were also considered. The responsivity and specific detectivity of the simulated photodetector are 0.23 A/W and 1.1·1010 Jones, respectively.

References

Ma T., Xue N., Muhammad A. et al. Recent Progress in Photodetectors: From Materials to Structures and Applications. Micromachines, 2024, 15(10), 1249 pp. 1-28 https://doi.org/10.3390/mi15101249

Qin J., Yan Z., Huo M. Design of low-noise photodetector with a bandwidth of 130 MHz based on transimpedance amplification circuit. Chinese Optics Letters, 2016, vol. 14, Iss. 12, 122701 pp. 1-5. https://doi.org/10.3788/COL201614.122701

Vaishnavi S., Seetharaman G. Computational modelling and photovoltaic performance evaluation of various ETL/HTL engineered MASnI3 planar perovskite solar cell architectures using SCAPS-1D . Energy Conversion and Management, 2025, vol. 332, 15 May 119747 p. 1-22. https://doi.org/10.1016/j.enconman.2025.119747

Sharma D.K., Shukla S., Sharma K.K., Kumar V. A review on ZnO: Fundamental properties and applications. MaterialsToday Proseedings, 2022, vol. 49, Part 8, pp.3028-3035. https://doi.org/10.1016/j.matpr.2020.10.238

Toma F.T. Z., Rahman M. S., Maria K.H. A review of recent advances in ZnO nanostructured thin films by various deposition techniques. Discover Materials, 2025, vol. 5, art. num.60, pp.1-31. https://doi.org/10.1007/s43939-025-00201-1

Hussain B., Aslam A., Khan T.M. et al. Electron Affinity and Bandgap Optimization of Zinc Oxide for Improved Performance of ZnO/Si Heterojunction Solar Cell Using PC1D. Simulations Electronics, 2019, vol. 8(2), 238 pp.1-8. https://doi.org/10.3390/electronics8020238

Chen L., Chen X., Liu Y. Research on ZnO/Si heterojunction solar cells. Journal of Semiconductors, 2017 vol. 38, nor 5, pp. 1-11. 38 054005 https://doi.org/10.1088/1674-4926/38/5/054005

Helal H., Arbia M. B., Pakdel H. et al. Enhanced NO2 Detection in ZnO-Based FET Sensor: Charge Carrier Confinement in a Quantum Well for Superior Sensitivity and Selectivity. Chemosensors, 2025, 13(10), 358 pp. 1-22. https://doi.org/10.3390/chemosensors13100358

Szymon R., Zielony E., Lysak A., Pietrzyk M.A. Influence of the type of interlayer on current transport mechanisms and defects in n-ZnO/ZnCdO/p-Si and n-ZnCdO/ZnO/p-Si heterojunctions grown by molecular beam epitaxy. Journal of Alloys and Compounds, 2023, vol. 951, 169859. https://doi.org/10.1016/j.jallcom.2023.169859

Salih M. A., Mustafa M. A., Yousef B.A.A. Developing Lead-Free Perovskite-Based Solar Cells with Planar Structure in Confined Mode Arrangement Using SCAPS-1D. Sustainability, 2023, vol. 15, no. 2, article 1607, pp.1-18. https://doi.org/10.3390/su15021607.

Yao H. , Liu L. Design and Optimize the Performance of Self-Powered Photodetector Based on PbS/TiS3 Heterostructure by SCAPS-1D. Nanomaterials, 2022, 12, article 325. p.1-11. https://doi.org/10.3390/nano12030325

EnSebe G.C., Ukoba K. and Jen T.-C. Numerical modeling of effect of annealing on nanostructured CuO/TiO2 pn heterojunction solar cells using SCAP. AIMS Energy, 2019, vol. 7, no.4, pp. 527–538. https://doi.org/10.3934/energy.2019.4.527

Goje A.A., Ludin N.A., Teridi M.A.M. et al. Design and Simulation of Lead-free Flexible Perovskite Solar cell Using SCAPS-1D. International Conference on Sustainable, Renewable & Energy Efficiency. 2022 IOP Conf. Series: Materials Science and Engineering, 2023, 1278, article 012004. https://doi.org/10.1088/1757-899X/1278/1/012004

Meyer E.L., Jakalase S., Nqombolo A. et al. The Numerical Simulation of a Non-Fullerene Thin-Film Organic Solar Cell with Cu2FeSnS4 (CFTS) Kesterite as a Hole Transport Layer Using SCAPS-1D. Coatings, 2025, 15, no.3, 266, pp. 1 -21. https://doi.org/10.3390/coatings15030266

Krishnan A., Subash T.D. Simulation of NiOx Based Solar Cells Using SCAPS Software. NanoWorld Journal, 2023, vol. 9, no.S5, S143-S148. https://doi.org/10.17756/nwj.2023-s5-028

Rana A.D., Pharne I.D., Bhargava K. Numerical simulation of highly efficient double perovskite solar cell using SCAPS-1D. MaterialsToday Proseedings, 2023, vol.73, Part 4, pp. 584-589. https://doi.org/10.1016/j.matpr.2022.11.110

Mustafa G.M., Younas B., Falk M., et al. Modeling and numerical analysis of FTO/TiO2/Cs2BiAgI6/CBTS/Au solar cells for enhanced photovoltaic performance. Inorganic Chemistry Communications, 2025, vol. 175, no.5, 114146 pp. 1- 13. https://doi.org/10.1016/j.inoche.2025.114146

Chowdhury T.A. SCAPS modeling and performance analysis of AZO/SnS2/CZTS solar cells. Optics Continuum, 2024, vol. 3, No. 8 / 15, pp. 1341-1368. https://doi.org/10.1364/OPTCON.527415

Javed A., Nasir M.F., Azam S., Amin M.A. Numerical simulation for a suitable electron transport layer of a lead-free CuInSe2 based perovskite solar cell and PV module International. Journal of Electrochemical Science, 2025, vol. 20, Iss.1, 100893 pp1-13. https://doi.org/10.1016/j.ijoes.2024.100893

Hidouri T., Rabhi S., Bencherif H., Fornari R. Design of CsSnBr3/Ga2O3 Hybrid Photodetectors for High UV Selectivity and Bifacial Usage. Adv. Theory Simul., 2025, vol. 8, e01163 pp.1 – 11. https://doi.org/10.1002/adts.202501163

Kanmaz İ. Simulati on of CdS/p-Si/p+-Si and ZnO/CdS/p-Si/p+-Si heterojunction solar cells. Results in Optics,Vol. 10, 2023, 100353 pp .1-9. https://doi.org/10.1016/j.rio.2023.100353

Houimi A., Yiğit Gezgin S., Gündoğdu Y., Kiliç H.Ş. I-V Characteristics Calculation Using SCAPS-1D. Selcuk University. Journal of Social and Technical Researches, 2021, vol.19, p. 1-6.

Chu Dr. X., Liu S., Luan B.-B. et al. Crystal-Facet-Controlled Internal Electric Field in MOF/COF Heterojunction Towards Efficient Photocatalytic Overall Water Splitting. Angew. Chem. Int. Ed. 2025, 64, e202422940 p.1-9. https://doi.org/10.1002/anie.202422940

Malpure N.N., Patil S.R., Sali J.V. et al. Influence of Multilayer Architecture on the Structural, Optical, and Photoluminescence Properties of ZnO Thin Films. Photonics, 2025, 12(12), 1219 p. 1-17. https://doi.org/10.3390/photonics12121219

Obikoya G.D., Soman A., Das U. K., Hegedus S.S. Investigation into fill factor and open-circuit voltage degradations in silicon heterojunction solar cells under accelerated life testing at elevated temperatures. Solar Energy Materials and Solar Cells, 2023, vol. 263, 112586 pp.1-28. https://doi.org/10.1016/j.solmat.2023.112586

Chen L., Chen X., Liu Y. et al. Research on ZnO/Si heterojunction solar cells. Journal of Semiconductors, 2017, Vol. 38, no. 5, article 054005 pp. 1-11.https://doi.org/10.1088/1674-4926/38/5/054005.

Fahad O.A., Al Rawi B.K., Ramizy A., Salih E.Y. High-performance ZnO/CdTe/Ge/Si heterojunction photodetector for short/mid-wavelength detection. Sensors and Actuators A. Physical, 2025, vol. 383, article 116198, pp.1-8. https://doi.org/10.1016/j.sna.2025.116198

Pogrebnyak A.D., Jamil N. Y. Muhammed A.K.M. Simulation Study of n-ZnO/p-Si Heterojunction Solar Cell . Nanosystems, Nanomaterials, Nanotechnologies, 2011, vol. 9, no 4, pp. 819—830.

Helal H., Arbia M.B., Pakdel H. et al. Enhanced NO2 Detection in ZnO-Based FET Sensor: Charge Carrier Confinement in a Quantum Well for Superior Sensitivity and Selectivity. Chemosensors, 2025, 13(10), 358 pp.1-22. https://doi.org/10.3390/chemosensors13100358

Meyer E.L., Jakalase S., Nqombolo A. et al. The Numerical Simulation of a Non-Fullerene Thin-Film Organic Solar Cell with Cu2FeSnS4 (CFTS) Kesterite as a Hole Transport Layer Using SCAPS-1D. Coatings, 2025, 15(3), 266 pp.1-21. https://doi.org/10.3390/coatings15030266

Hooge F.N. On the additivity of generation–recombination spectra. Part 1: Conduction band with two centres. Physica B: Condensed Matter, 2002, vol. 311, Iss. 3–4, pp. 238-249. https://doi.org/10.1016/S0921-4526(01)01027-4

Hooge F.N. On the additivity of generations-recombination spectra part 2 : 1/f noise. Physica B: Condensed Matter, 2003, vol. 336, Iss. 3–4, pp. 236-251. https://doi.org/10.1016/S0921-4526(03)00164-9

Vandamme L.K.J., Hooge F.N. On the additivity of generation-recombination spectra Part 3: The McWhorter model for 1/f noise in MOSFETs. Physica B: Condensed Matter, 2005, vol. 357, Iss. 3–4, pp 507-524 https://doi.org/10.1016/j.physb.2004.09.106

Kim D., Lee J.-W., Lim J. et al. Highly stable two-level current fluctuation in complex oxide heterostructures. Nature Communications, 2025, vol. 16, no. 1, article 16:5459, pp.1-10.https://doi.org/10.1038/s41467-025-60672-x

Vitusevich S.A., Danylyuk S.V., Kurakinet A. M. et al. Origin of noise in heterostructures in the range of 10-100 MHz. J. Appl. Phys., 2006, vol. 99 article, 073706, pp. 1-6. https://doi.org/10.1063/1.2188048

Pilotto A., Dollfus P., Saint-Martin J., Pala M. Full quantum simulation of Shockley–Read–Hall recombination in p-i-n and tunnel diodes. Solid-State Electronics, 2022, 198, 108469 p. 1-4. https://doi.org/10.1016/j.sse.2022.108469

Wang F., Zhang T., Xie R. et al. How to characterize figures of merit of two-dimensional photodetectors. Nature Communications, 2023, 14:2224, pp. 1-9. https://doi.org/10.1038/s41467-023-37635-1

Sratongkham P., Chuenchom R., Tuantranont A. et al. Non-monotonic evolution of the responses of ZnO-nanoparticle UV-sensitive devices under ambient aging. Materials Today Communications, 2023, vol. 36, 106925, pp.1-14. https://doi.org/10.1016/j.mtcomm.2023.106925

Published
2026-06-30
How to Cite
Virt, I., & Padalka, I. (2026). Modeling of a photodiode structure based on a heterojunction ZnO/Si. Technology and Design in Electronic Equipment, (1), 17-31. https://doi.org/10.15222/TKEA2026.1.17