Proton-enabled activation of peptide materials for biological bimodal memory

The process of memory and learning in biological systems is multimodal, as several kinds of input signals cooperatively determine the weight of information transfer and storage. This study describes a peptide-based platform of materials and devices that can control the coupled conduction of protons...

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Veröffentlicht in:Nature communications 2020-11, Vol.11 (1), p.5896-5896, Article 5896
Hauptverfasser: Song, Min-Kyu, Namgung, Seok Daniel, Choi, Daehwan, Kim, Hyeohn, Seo, Hongmin, Ju, Misong, Lee, Yoon Ho, Sung, Taehoon, Lee, Yoon-Sik, Nam, Ki Tae, Kwon, Jang-Yeon
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Sprache:eng
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Zusammenfassung:The process of memory and learning in biological systems is multimodal, as several kinds of input signals cooperatively determine the weight of information transfer and storage. This study describes a peptide-based platform of materials and devices that can control the coupled conduction of protons and electrons and thus create distinct regions of synapse-like performance depending on the proton activity. We utilized tyrosine-rich peptide-based films and generalized our principles by demonstrating both memristor and synaptic devices. Interestingly, even memristive behavior can be controlled by both voltage and humidity inputs, learning and forgetting process in the device can be initiated and terminated by protons alone in peptide films. We believe that this work can help to understand the mechanism of biological memory and lay a foundation to realize a brain-like device based on ions and electrons. The structural programmability and functionality of peptide materials can be leverage for various next-generation devices such as non-volatile memories. The authors report a proton-coupled mechanism in tyrosine-rich peptides for realizing multimodal memory devices.
ISSN:2041-1723
2041-1723
DOI:10.1038/s41467-020-19750-5