Enhancing Solar Cell Efficiency through Quantum Dots and Emerging Photovoltaic Technologies

Authors

  • Haitong Wang
  • Qiyu Su
  • Tianyu Weng

DOI:

https://doi.org/10.54097/v201hq10

Keywords:

Quantum Dots, solar cell, photovoltaics.

Abstract

As the world strives for carbon neutrality, solar energy has become a central focus for reducing emissions. However, the efficiency of solar cells is constrained by the Shockley-Queisser limit, limiting their broader adoption. Quantum dots (QDs), nanoscale semiconductor particles with unique size-dependent properties, offer a promising solution to enhance solar cell performance by improving light absorption and enabling multiple exciton generation. This paper explores the application of QDs in improving solar cell efficiency, focusing on their ability to broaden the absorption spectrum and generate multiple electron-hole pairs per photon. Various synthesis methods—such as colloidal synthesis, epitaxial growth, and chemical vapor deposition (CVD)—are discussed, highlighting how each impacts the size, shape, and properties of QDs. The paper reviews key types of QD-based solar cells, including QD-sensitized, thin-film, and perovskite-enhanced cells, which have demonstrated significant improvements in power conversion efficiency. Additionally, challenges such as high production costs, stability issues, and the toxicity of lead-based QDs are addressed, along with emerging trends in non-toxic alternatives and potential commercialization in areas like building-integrated photovoltaics (BIPV) and wearable electronics.

Downloads

Download data is not yet available.

References

[1] Mohamed W A A, Abd El-Gawad H, Mekkey S, et al. Quantum dots synthetization and future prospect applications. Nanotechnology Reviews, 2021, 10 (1): 1926 - 1940.

[2] Zhang J Y, Wei W Q, Wang J H, et al. Epitaxial growth of InAs/GaAs quantum dots on {113}-faceted Ge/Si (001) hollow substrate. Optical Materials Express, 2020, 10 (4): 1045 - 1052.

[3] Li T, Dagenais M. Modified Shockley-Queisser limit for quantum dot solar cell/2015 IEEE 42nd Photovoltaic Specialist Conference (PVSC). IEEE, 2015: 1 - 4.

[4] Khalid M, Mallick T K. Stability and performance enhancement of perovskite solar cells: a review. Energies, 2023, 16 (10): 4031.

[5] Liu L, Najar A, Wang K, et al. Perovskite quantum dots in solar cells. Advanced Science, 2022, 9 (7): 2104577.

[6] Chi W, Banerjee S K. Application of perovskite quantum dots as an absorber in perovskite solar cells. Angewandte Chemie International Edition, 2022, 61 (9): e202112412.

[7] Khan J, Ullah I, Yuan J. CsPbI 3 perovskite quantum dot solar cells: opportunities, progress and challenges. Materials Advances, 2022, 3 (4): 1931 - 1952.

[8] Aghamali A, Khosravi M, Hamishehkar H, et al. Synthesis and characterization of highly efficient photoluminescent sunlight driven photocatalyst of N-Carbon Quantum Dots. Journal of Luminescence, 2018, 201: 265 - 274.

[9] Sahu A, Garg A, Dixit A. A review on quantum dot sensitized solar cells: Past, present and future towards carrier multiplication with a possibility for higher efficiency. Solar Energy, 2020, 203: 210 - 239.

[10] Duan L, Hu L, Guan X, et al. Quantum dots for photovoltaics: a tale of two materials. Advanced Energy Materials, 2021, 11 (20): 2100354.

Downloads

Published

24-12-2024

How to Cite

Wang, H., Su, Q., & Weng, T. (2024). Enhancing Solar Cell Efficiency through Quantum Dots and Emerging Photovoltaic Technologies. Highlights in Science, Engineering and Technology, 121, 545-551. https://doi.org/10.54097/v201hq10