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◆ Science advances2026-09-18

Bidirectional optoelectronic switching in protein by photoinduced phase transition.

Guangdong Zhou, Xiuxia Wang, Xuesen Xie, Ye Zhou, Bai Sun, Yang Chai

原始摘要(英文原文)· Original abstract
Protein polymers conduct electricity due to the delocalization of π electrons along the conjugated main chains, but their photoconductivity often shows unidirectional tunability. We report a protein polymer with bidirectional optoelectronic conductivity because of reversible light intensity-dependent secondary structural transformation. The protein device shows a positive photocurrent under high light intensity (2.22 to 3.18 μW·μm-2 and the wavelength of 405-nanometer illumination) illumination and a negative photocurrent under low light intensity (0.32 to 1.91 μW·μm-2). Under low light intensity light, the helix structures untwist into a low-conductivity β-turn because only partial hydrogen bonds are damaged by insufficient low-energy excitons and Joule heat, whereas high-intensity light drives a transition to a high-conductivity β sheet because most hydrogen bonds are destructed by high-energy excitons and sufficient Joule heat. The tunable low-conductivity state arises from an increase in β-turn content coupled with a decrease in β sheet content, while the inverse transition enables the high-conductivity state. This bidirectional conductivity enables the fibroin-based device to perform in-sensor computing for real-time perception of multiple object motions.
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Bidirectional optoelectronic switching in protein by photoinduced phase transition. — 科研速览 Science Skim