Edible electronics offer a unique platform for developing devices made entirely from food-based materials that can be safely digested or excreted without environmental concerns. Yet, identifying semiconductors that are both food-based and capable of supporting efficient charge transport remains a challenge. In this work, we show that this hurdle can be overcome by applying structure–property insights developed in organic electronics to natural compounds, revealing how a material previously discarded for electronic applications and largely present in vegetables, β-carotene, can be tuned into a viable semiconductor. Beyond its implications for edible electronics, this approach also highlights the broader potential of renewable, nature-derived materials as building blocks for sustainable technologies.
Scaccabarozzi, A., Feltri, E., Mondelli, P., Rossi, P., Pallini, F., Treglia, A., et al. (2026). Food-Based Electronics: Revisiting β-Carotene Organic Transistors. ACS APPLIED MATERIALS & INTERFACES, 18(9), 14056-14066 [10.1021/acsami.5c23614].
Food-Based Electronics: Revisiting β-Carotene Organic Transistors
Pallini F.;Beverina L.;
2026
Abstract
Edible electronics offer a unique platform for developing devices made entirely from food-based materials that can be safely digested or excreted without environmental concerns. Yet, identifying semiconductors that are both food-based and capable of supporting efficient charge transport remains a challenge. In this work, we show that this hurdle can be overcome by applying structure–property insights developed in organic electronics to natural compounds, revealing how a material previously discarded for electronic applications and largely present in vegetables, β-carotene, can be tuned into a viable semiconductor. Beyond its implications for edible electronics, this approach also highlights the broader potential of renewable, nature-derived materials as building blocks for sustainable technologies.| File | Dimensione | Formato | |
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