A novel conductive composite gel based on polyvinyl alcohol/polymerizable deep eutectic solvent with superior tear resistance, tensile properties and recyclability
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[1] D. Mecerreyes,et al. Polyphenol Iongel Patches with Antimicrobial, Antioxidant and Anti-Inflammatory Properties , 2023, Polymers.
[2] Seung Hwan Chang,et al. Characterization of highly linear stretchable sensor made of Gr-PEDOT:PSS/MnO2 nanowires/Ecoflex composite , 2023, Composite Structures.
[3] Shengfang Li,et al. Facile preparation of stretchable and multifunctional ionic gels via frontal polymerization of polymerizable ternary deep eutectic monomers with a long pot life , 2022, Colloid and Polymer Science.
[4] Zi-xin Mai,et al. Self-Compounded, Tough Biohydrogels for Robust Self-Adhesive Biointerfaces , 2022, Materials Today Physics.
[5] O. Oderinde,et al. Deep eutectic solvents-assisted stimuli-responsive smart hydrogels – a review , 2022, European Polymer Journal.
[6] Xiancai Jiang,et al. A high-strength, environmentally stable, self-healable, and recyclable starch/PVA organohydrogel for strain sensor , 2022, European Polymer Journal.
[7] Baolin Guo,et al. Antibacterial conductive self-healable supramolecular hydrogel dressing for infected motional wound healing , 2022, Science China Chemistry.
[8] Hao‐Bin Zhang,et al. Strong and Tough Physical Eutectogels Regulated by the Spatiotemporal Expression of Non‐Covalent Interactions , 2022, Advanced Functional Materials.
[9] Qi Ge,et al. Ultra-fast programmable human-machine interface enabled by 3D printed degradable conductive hydrogel , 2022, Materials Today Physics.
[10] G. Han,et al. High-Sensitivity and Extreme Environment-Resistant Sensors Based on PEDOT:PSS@PVA Hydrogel Fibers for Physiological Monitoring. , 2022, ACS applied materials & interfaces.
[11] Shengfang Li,et al. Rapid preparation of conductive and self-healing ionic gels with tunable mechanical properties via frontal polymerization of deep eutectic monomers , 2022, Colloid and Polymer Science.
[12] Yongpeng Ma,et al. Highly Stretchable, Self-Healing, and Adhesive Polymeric Eutectogel Enabled by Hydrogen-Bond Networks for Wearable Strain Sensor , 2022, SSRN Electronic Journal.
[13] Weizhong Yuan,et al. Superior, Environmentally Tolerant, Flexible, and Adhesive Poly(ionic liquid) Gel as a Multifaceted Underwater Sensor. , 2022, ACS applied materials & interfaces.
[14] Rahmat Sadeghi,et al. Physicochemical Properties of Deep Eutectic Solvents: A Review , 2022, Journal of Molecular Liquids.
[15] P. Alexandridis,et al. Flexible and Stretchable Electrically Conductive Polymer Materials for Physical Sensing Applications , 2022, Polymer Reviews.
[16] H. Bai,et al. Photo-crosslinking ionic conductive PVA-SbQ/FeCl3 hydrogel sensors , 2022, Colloids and Surfaces A: Physicochemical and Engineering Aspects.
[17] Jiahui He,et al. Antibacterial adhesive self-healing hydrogels to promote diabetic wound healing. , 2022, Acta biomaterialia.
[18] Shangzhong Zhang,et al. Freeze-Resistant, Conductive, and Robust Eutectogels of Metal Salt-Based Deep Eutectic Solvents with Poly(vinyl alcohol) , 2022, ACS Applied Polymer Materials.
[19] Dong Yue,et al. Anti-freezing and self-healing nanocomposite hydrogels based on poly(vinyl alcohol) for highly sensitive and durable flexible sensors , 2022, Chemical Engineering Journal.
[20] Lifeng Yan,et al. A Highly Conductive, Self-Recoverable, and Strong Eutectogel of a Deep Eutectic Solvent with Polymer Crystalline Domain Regulation. , 2021, ACS applied materials & interfaces.
[21] I. Shahid,et al. Recent Developments in Textile Based Polymeric Smart Sensor for Human Health Monitoring: A review , 2021, Arabian Journal of Chemistry.
[22] Jinqing Wang,et al. PVA / SA / MXene dual‐network conductive hydrogel for wearable sensor to monitor human motions , 2021, Journal of Applied Polymer Science.
[23] Shengfang Li,et al. Starch as a reinforcement agent for poly(ionic liquid) hydrogels from deep eutectic solvent via frontal polymerization. , 2021, Carbohydrate polymers.
[24] D. Mecerreyes,et al. 3D Printable and Biocompatible Iongels for Body Sensor Applications , 2021, Advanced Electronic Materials.
[25] A. Ragauskas,et al. Deep Eutectic Solvents: A Review of Fundamentals and Applications , 2020 .
[26] K. Scott,et al. Gel–Polymer Electrolytes Based on Poly(Ionic Liquid)/Ionic Liquid Networks , 2020 .
[27] Feng Zhou,et al. 3D Printing of Dual-Physical Cross-linking Hydrogel with Ultrahigh Strength and Toughness , 2020 .
[28] J. Yu,et al. Functional Conductive Hydrogels for Bioelectronics , 2020 .
[29] Jin Zhang,et al. Multifunctional Poly(vinyl alcohol) Nanocomposite Organohydrogel for Flexible Strain and Temperature Sensor. , 2020, ACS applied materials & interfaces.
[30] Feng Yan,et al. Digital manufacturing of functional materials for wearable electronics , 2020 .
[31] Agnes S. Klar,et al. Advanced Hydrogels as Wound Dressings , 2020, Biomolecules.
[32] Ting Fan,et al. Transparent conductive elastomers with excellent autonomous self-healing capability in harsh organic solvent environments , 2020 .
[33] W. Hong,et al. Fracture of tough and stiff metallosupramolecular hydrogels , 2020, Materials Today Physics.
[34] D. Tang,et al. Self-Powered Temperature Sensor with Seebeck Effect Transduction for Photothermal-Thermoelectric Coupled Immunoassay. , 2020, Analytical chemistry.
[35] Yang Zou,et al. Customization of Conductive Elastomer Based on PVA/PEI for Stretchable Sensors. , 2020, Small.
[36] B. Gurkan,et al. Metal-Free Deep Eutectic Solvents: Preparation, Physical Properties, and Significance. , 2019, The journal of physical chemistry letters.
[37] P. Gómez‐Romero,et al. Development of low-melting point molten salts and detection of solid-to-liquid transitions by alternative techniques to DSC , 2019, Solar Energy Materials and Solar Cells.
[38] Z. Pan,et al. Flexible strain sensors fabricated using carbon-based nanomaterials: A review , 2018, Current Opinion in Solid State and Materials Science.
[39] B. G. Soares. Ionic liquid: A smart approach for developing conducting polymer composites , 2018, Journal of Molecular Liquids.
[40] Dezhen Wu,et al. Preparation of Palladium/Silver-Coated Polyimide Nanotubes: Flexible, Electrically Conductive Fibers , 2017, Materials.
[41] E. Alsberg,et al. Highly Elastic and Tough Interpenetrating Polymer Network-Structured Hybrid Hydrogels for Cyclic Mechanical Loading-Enhanced Tissue Engineering , 2017 .
[42] Seeram Ramakrishna,et al. A review of properties influencing the conductivity of CNT/Cu composites and their applications in wearable/flexible electronics , 2017 .
[43] B. Putz,et al. Electro-Mechanical Testing of Conductive Materials Used in Flexible Electronics , 2016, Front. Mater..
[44] Ruxue Yang,et al. Recent advances in the 3D printing of electrically conductive hydrogels for flexible electronics , 2022, Journal of Materials Chemistry C.
[45] Shangzhong Zhang,et al. Lignin promoted the fast formation of a robust and highly conductive deep eutectic solvent ionic gel at room temperature for a flexible quasi-solid-state supercapacitor and strain sensors , 2021 .