Abstract
The accelerated increase in demand for III-V space photovoltaics on GaAs and Ge substrates, as well as growing interests in terrestrial applications, motivate the development of cost-effective, high-throughput processing routes of these materials. Here, we assess spray-coated silver (Ag) back contact metallization as a substitute for electron-beam-evaporated metals currently used in industry. We find that the spray-coated Ag films are dense and continuous. By means of quantum efficiency, dark current-voltage, and illuminated current-voltage characterizations, we show that spray-coated GaAs and Ge solar cells perform similarly to baseline devices with electroplated Au, including under high current densities. We estimate that the thresholds for specific contact resistance below which back contacts do not significantly contribute to resistive loss are 2.1x10-1..omega..2.1x10-1..omega..cm22 for GaAs and 4.7x10-2..omega..4.7x10-2..omega..cm22 for Ge. We experimentally confirm that our spray-coated samples meet these requirements. Peel tests show that the adhesion of plain spray-coated Ag films to the back of p-type Ge substrates used in III-V solar cells is currently insufficient, whereas adhesion to p-type GaAs substrates is outstanding and requires no further optimization.
| Original language | American English |
|---|---|
| Pages (from-to) | 447-452 |
| Number of pages | 6 |
| Journal | IEEE Journal of Photovoltaics |
| Volume | 16 |
| Issue number | 4 |
| DOIs | |
| State | Published - 2026 |
NLR Publication Number
- NLR/JA-5900-99203
Keywords
- back-contact metallization
- concentrator photovoltaics
- GaAs solar cells
- Ge solar cells
- high-throughput processing
- III-V solar cells
- metal back contacts
- ohmic contacts
- silver (Ag) contacts
- space solar cells
- specific contact resistance
- spray coating
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