Enhancing electrical power output of bifacial photovoltaic modules through low-cost reflective materials: A multi-location experimental study under tropical conditions

The effect of three low-cost reflective materials (aluminum foil, mirror sticker, and white cladding) on the performance of bifacial photovoltaic (PV) modules was investigated in this study under tropical outdoor conditions. A paired experimental setup consisting of two identical 20 W bifacial PV modules was used to test the performance of the reflector-assisted module at two locations in Sri Lanka (Kandy and Kurunegala) with a non-reflective control module. The voltage, current, power, and module temperature were measured every 5 s using a low-cost ESP32-based sensor monitoring system. All reflective materials increased the measured operating voltage, current, and power relative to the paired control under the fixed-load condition, with mean power gains of 56.7–80.5%. The highest average gain was achieved with white cladding in Kurunegala and with aluminum foil in Kandy. The difference is due to the interaction between the optical characteristics of the reflectors and the local environmental conditions. The observed differences are consistent with the interaction between the optical characteristics of the reflectors and local environmental conditions. Diffuse reflection may provide more spatially distributed rear-side illumination, while the higher reflectance of aluminum foil may provide greater rear-side illumination under favorable direct-sunlight conditions. While the irradiance on the back side was not measured directly, the results show that low-cost reflector materials can enhance bifacial PV performance and that the choice of reflector material should be based on site-specific environmental conditions.

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Publication Details

Journal
Next Energy
Published
2026-09-30
DOI
https://doi.org/10.1016/j.nxener.2026.101051
Primary Topic
Photovoltaic System Optimization Techniques
Type
article
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article

Enhancing electrical power output of bifacial photovoltaic modules through low-cost reflective materials: A multi-location experimental study under tropical conditions

Sanjaya Kavishka Samaraweera, Pulendran Mathitharan
Next Energy
Photovoltaic System Optimization Techniques
article

Enhancing electrical power output of bifacial photovoltaic modules through low-cost reflective materials: A multi-location experimental study under tropical conditions

Sanjaya Kavishka Samaraweera, Pulendran Mathitharan
article en

Abstract

The effect of three low-cost reflective materials (aluminum foil, mirror sticker, and white cladding) on the performance of bifacial photovoltaic (PV) modules was investigated in this study under tropical outdoor conditions. A paired experimental setup consisting of two identical 20 W bifacial PV modules was used to test the performance of the reflector-assisted module at two locations in Sri Lanka (Kandy and Kurunegala) with a non-reflective control module. The voltage, current, power, and module temperature were measured every 5 s using a low-cost ESP32-based sensor monitoring system. All reflective materials increased the measured operating voltage, current, and power relative to the paired control under the fixed-load condition, with mean power gains of 56.7–80.5%. The highest average gain was achieved with white cladding in Kurunegala and with aluminum foil in Kandy. The difference is due to the interaction between the optical characteristics of the reflectors and the local environmental conditions. The observed differences are consistent with the interaction between the optical characteristics of the reflectors and local environmental conditions. Diffuse reflection may provide more spatially distributed rear-side illumination, while the higher reflectance of aluminum foil may provide greater rear-side illumination under favorable direct-sunlight conditions. While the irradiance on the back side was not measured directly, the results show that low-cost reflector materials can enhance bifacial PV performance and that the choice of reflector material should be based on site-specific environmental conditions.

Next EnergyVol. 13
University of Jaffna (LK)
Affordable and clean energy
Openalex Percentile: Top 31%
Photovoltaic System Optimization Techniques
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