Hydrophobic Association Hydrogel Enabled by Multiple Noncovalent Interactions for Wearable Bioelectronics in Amphibious Environments

التفاصيل البيبلوغرافية
العنوان: Hydrophobic Association Hydrogel Enabled by Multiple Noncovalent Interactions for Wearable Bioelectronics in Amphibious Environments
المؤلفون: Peng Du, Juan Wang, Yu-I Hsu, Hiroshi Uyama
سنة النشر: 2024
مصطلحات موضوعية: Biophysics, Biochemistry, Medicine, Genetics, Biotechnology, Developmental Biology, Infectious Diseases, Space Science, Environmental Sciences not elsewhere classified, Biological Sciences not elsewhere classified, Chemical Sciences not elsewhere classified, Physical Sciences not elsewhere classified, wirelessly monitor electrocardiography, ultrasound dispersion endow, toughness (∼ 2, storage durability owing, reliable water resistance, chitosan chain entanglements, cetyltrimethylammonium bromide micelles, 4 mj ·, stable electrical property, smart wearable devices, multiple noncovalent interactions, based flexible sensors, wearable bioelectronics, underwater based, multiple dynamic, flexible sensor, electrostatic interactions, electrical properties
الوصف: Functionalized hydrogels integrating soft nature and electrical properties are of great significance for the development of human–machine interfaces, smart wearable devices, and biomimetics robotics. However, the hydrogel-based flexible sensors are inevitably utilized in aquatic environments, resulting in swelling-induced inferior mechanical performance, skin-component delamination, and monitoring malfunction. Herein, a multiple dynamic-bond-driven hydrophobic association hydrogel with reliable water resistance, mechanical robustness, and stable electrical property is proposed via a “two-step” method including micellar copolymerization and postsoaking strategy. Benefiting from the electrostatic interacted hydrophobic segments formed by myristyl methacrylate in the presence of cetyltrimethylammonium bromide micelles, the transparent hydrogel exhibits desirable antiswelling feature, excellent stretchability (∼1500% elongation), and toughness (∼2.4 MJ·m –3 ). The synergistic mechanisms of hydrophobic association and ultrasound dispersion endow the hydrogel with repeatable wet-adhesion behaviors. Moreover, the as-prepared hydrogel possesses significant conductivity and storage durability owing to the chitosan chain entanglements, electrostatic interactions, and strong hydrogen bonding established by sodium phytate. As a demonstration, a flexible sensor is fabricated to transmit various human movement signals and wirelessly monitor electrocardiography in both air and underwater based on its wide sensing range (∼500%) and linear sensitivity. This study offers an effective strategy for developing wearable electronic systems for amphibious scenarios.
نوع الوثيقة: dataset
اللغة: unknown
Relation: https://figshare.com/articles/media/Hydrophobic_Association_Hydrogel_Enabled_by_Multiple_Noncovalent_Interactions_for_Wearable_Bioelectronics_in_Amphibious_Environments/25130200
DOI: 10.1021/acs.chemmater.3c02454.s003
الاتاحة: https://doi.org/10.1021/acs.chemmater.3c02454.s003
https://figshare.com/articles/media/Hydrophobic_Association_Hydrogel_Enabled_by_Multiple_Noncovalent_Interactions_for_Wearable_Bioelectronics_in_Amphibious_Environments/25130200
Rights: CC BY-NC 4.0
رقم الانضمام: edsbas.5585F35B
قاعدة البيانات: BASE
الوصف
DOI:10.1021/acs.chemmater.3c02454.s003