Mathias Polz, Konrad Binter, Kaila M. Yallum, Thomas Rath, Marta Nowakowska-Desplantes, Christa Schimpel, Gerhard Sommer, Nassim Ghaffari-Tabrizi-Wizsy, Natalie Banerji, Gregor Trimmel, Theresa Rienmüller
{"title":"PM6:Y6体异质结光活性膜在生物环境中是否具有细胞相容性和电稳定性?","authors":"Mathias Polz, Konrad Binter, Kaila M. Yallum, Thomas Rath, Marta Nowakowska-Desplantes, Christa Schimpel, Gerhard Sommer, Nassim Ghaffari-Tabrizi-Wizsy, Natalie Banerji, Gregor Trimmel, Theresa Rienmüller","doi":"10.1002/aelm.202400899","DOIUrl":null,"url":null,"abstract":"<p>Organic photovoltaics show great potential for wireless bioelectronics, offering the ability to convert visible-to-near-infrared light into electrical energy. This study investigates the stability and biocompatibility of PM6:Y6 bulk heterojunction layers, chosen for their efficient charge separation and absorption profile compatible with the optical transparency of skin tissue, under simulated physiological conditions. Biocompatibility is validated using the chicken chorioallantoic membrane and cytotoxicity assays with primary neurons, showing no adverse effects on cell viability or morphology. The layers demonstrated stable photoinduced charge separation over 28 days in electrolytic environments with a significant voltage increase of ≈40 mV after one day. The addition of a PM6 overlayer improved voltage responses and reduced swelling, possibly acting as a selective barrier, however, leading to a decrease in the achievable peak current densities over time. Atomic force microscopy and transient absorption spectroscopy confirmed the structural and functional stability of the films, with almost unaffected charge generation and recombination rates in aqueous environments. The PM6 layer slowed charge formation due to increased diffusion lengths. These findings underscore the PM6:Y6 blend‘s potential for use in bioelectronics. Future studies should examine PM6:Y6 performance in in vivo conditions and focus on an improved understanding of interaction mechanisms with biological systems.</p>","PeriodicalId":110,"journal":{"name":"Advanced Electronic Materials","volume":"11 17","pages":""},"PeriodicalIF":5.3000,"publicationDate":"2025-03-24","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://advanced.onlinelibrary.wiley.com/doi/epdf/10.1002/aelm.202400899","citationCount":"0","resultStr":"{\"title\":\"Are PM6:Y6 Bulk Heterojunction Photoactive Films Cytocompatible and Electrically Stable in Biological Environments?\",\"authors\":\"Mathias Polz, Konrad Binter, Kaila M. 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The layers demonstrated stable photoinduced charge separation over 28 days in electrolytic environments with a significant voltage increase of ≈40 mV after one day. The addition of a PM6 overlayer improved voltage responses and reduced swelling, possibly acting as a selective barrier, however, leading to a decrease in the achievable peak current densities over time. Atomic force microscopy and transient absorption spectroscopy confirmed the structural and functional stability of the films, with almost unaffected charge generation and recombination rates in aqueous environments. The PM6 layer slowed charge formation due to increased diffusion lengths. These findings underscore the PM6:Y6 blend‘s potential for use in bioelectronics. 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Are PM6:Y6 Bulk Heterojunction Photoactive Films Cytocompatible and Electrically Stable in Biological Environments?
Organic photovoltaics show great potential for wireless bioelectronics, offering the ability to convert visible-to-near-infrared light into electrical energy. This study investigates the stability and biocompatibility of PM6:Y6 bulk heterojunction layers, chosen for their efficient charge separation and absorption profile compatible with the optical transparency of skin tissue, under simulated physiological conditions. Biocompatibility is validated using the chicken chorioallantoic membrane and cytotoxicity assays with primary neurons, showing no adverse effects on cell viability or morphology. The layers demonstrated stable photoinduced charge separation over 28 days in electrolytic environments with a significant voltage increase of ≈40 mV after one day. The addition of a PM6 overlayer improved voltage responses and reduced swelling, possibly acting as a selective barrier, however, leading to a decrease in the achievable peak current densities over time. Atomic force microscopy and transient absorption spectroscopy confirmed the structural and functional stability of the films, with almost unaffected charge generation and recombination rates in aqueous environments. The PM6 layer slowed charge formation due to increased diffusion lengths. These findings underscore the PM6:Y6 blend‘s potential for use in bioelectronics. Future studies should examine PM6:Y6 performance in in vivo conditions and focus on an improved understanding of interaction mechanisms with biological systems.
期刊介绍:
Advanced Electronic Materials is an interdisciplinary forum for peer-reviewed, high-quality, high-impact research in the fields of materials science, physics, and engineering of electronic and magnetic materials. It includes research on physics and physical properties of electronic and magnetic materials, spintronics, electronics, device physics and engineering, micro- and nano-electromechanical systems, and organic electronics, in addition to fundamental research.