Solar energy is essential for climate-neutral energy systems, but land for its deployment is scarce in urban and densely populated areas. One solution is to integrate photovoltaics (PV) into lightweight, flexible structures, such as tents, agricultural covers, and architectural membranes, without requiring additional land. However, existing flexible PV modules cannot stretch, which is a key requirement for textiles that elongate by 3–10%.
The StreP (Stretchable PV Foil) project aimed to develop stretchable PV foil using thin-film CIGS (copper–indium–gallium–selenide) solar cells combined with novel, patent-pending interconnect and encapsulation architectures. The goal was to maintain electrical performance and environmental protection during mechanical stretching.
Two main challenges were addressed:
1) Mechanical mismatch: Standard flexible PV breaks under tensile stress. A stretchable foil must deform without losing function.
2) Environmental durability: Outdoor textiles require protection from moisture, temperature fluctuations, and fatigue.
StreP uses a six-step, roll-to-roll compatible process involving thin, lightweight CIGS cells on metal substrates: punching and pre-stretching a polymer foil, placing interconnects, laminating cells, and releasing to create stretchable slack. Barrier coatings seal against humidity and wear.
The goal was to demonstrate a reliable and scalable stretchable photovoltaic (PV) foil at technology readiness level (TRL) 5–6 for integration into real-world textile applications. The demonstration progressed in three phases:
- Fabrication and validation of the stretchable interconnect;
- Assembly and environmental testing of the semi-finished foil;
- Integration into a demonstrator, such as a tent, agricultural cover, or architectural textile.
Impact Potential:
- Humanitarian and Defense: Tents with integrated PV panels provide clean, off-grid power.
- Agriculture: Dual-use shading covers that generate energy.
- Architecture: Tensile membranes that produce electricity.
- Commercialization: The interconnect process supports low-cost production, and licensing is being explored.
By unlocking PV stretchability, StreP expands solar energy into new fabric-integrated applications where rigid panels are ineffective.