Multi-physics investigation of a GaAs solar cell based PV-TE hybrid system with a nanostructured front surface

Yi Huang Hu, Ming Jia Li*, Yi Peng Zhou, Huan Xi, Tzu Chen Hung

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

14 Citations (Scopus)

Abstract

Tandem PV-TE hybrid system is an effective full solar-spectrum utilization method. Nanostructured front surface can make the system absorb more solar light, thereby generating more carriers and more heat. The heat will decrease photovoltaic efficiency but increase thermoelectric efficiency. Therefore, it's necessary to clarify the combined effect of nanostructure's full-spectrum characteristics on PV-TE hybrid system. In this study, a multi-physics coupling model of a GaAs solar cell based PV-TE hybrid system with a nanostructured front surface was built and validated. The numerical results show that the system output power of nanostructure with a 1.8% average reflectance in 0.28 ~ 0.875 μm is 374.3 W·m−2 greater than that with a 8.7% average reflectance and the system output power of nanostructure with a 2.6% average reflectance in 0.875 ~ 2.5 μm is 79.1 W·m−2 greater than that with a 8.1% average reflectance under 100 concentration ratio. It means that both the reductions of reflectance in 0.28 ~ 0.875 μm and in 0.875 ~ 2.5 μm can effectively improve the system output power. Therefore, nanostructure with low reflectance in full spectrum (not only in short wavelengths) is advised for a GaAs solar cell based PV-TE hybrid system.

Original languageEnglish
Pages (from-to)102-111
Number of pages10
JournalSolar Energy
Volume224
DOIs
Publication statusPublished - Aug 2021
Externally publishedYes

Keywords

  • Full-spectrum
  • GaAs-TE system
  • Nanostructure
  • Output power
  • Performance

Fingerprint

Dive into the research topics of 'Multi-physics investigation of a GaAs solar cell based PV-TE hybrid system with a nanostructured front surface'. Together they form a unique fingerprint.

Cite this