Biodegradable Conducting PVA-Hydrogel Based on Carbon Quantum Dots: Study of the Synergistic Effect of Additives

Author:

Gamboa JillianORCID,Paulo-Mirasol SofiaORCID,Espona-Noguera AlbertORCID,Enshaei HamidrezaORCID,Ortiz Sergi,Estrany FrancescORCID,Ginebra Maria-PauORCID,Torras JuanORCID

Abstract

AbstractConductive hydrogels are becoming one of the most important milestones for the development of new scaffolds, biosensors, supercapacitors, and green electronics within the field of biomedicine. In this work, we study the effect of different types of electroactive additives such as poly(3,4-ethylenedioxythiophene), tannic acid, and carbon quantum dots (CQDs), to form different poly(vinyl alcohol) (PVA)-based hydrogels with enhanced electrochemical properties. Different physicochemical tests are carried out to characterize the different PVA-based hybrid hydrogels and the rates of their degradation and loss of electroactivity throughout an eight-week biodegradation process. This work shows the individual and synergistic effects of the additives on various mechanical properties, including storage modulus and swelling ratio, and electrochemical properties of the PVA hydrogel. The additives have proven to enhance the electroactivity of the PVA-based hydrogels but as well their degradation. Finally, the use of the new hydrogel as a pressure sensor is also investigated. The study provides an insight on the potential use of CQDs, in synergy with other electroactivity enhancers, in the fabrication of novel hybrid conducting hydrogels in green electronics. Graphical Abstract

Funder

H2020 Marie Skłodowska-Curie Actions

Universitat Politècnica de Catalunya

Publisher

Springer Science and Business Media LLC

Reference54 articles.

1. Ádám B, Göen T, Scheepers PTJ, Adliene D, Batinic B, Budnik LT et al (2021) From inequitable to sustainable e-waste processing for reduction of impact on human health. Environ Environ Res 194:110728

2. Forti V, Balde CP, Kuehr R, Bel G, The Global E-waste, Monitor (2020) : Quantities, flows and the circular economy potential. Bonn, Geneva and Rotterdam: United Nations University/United Nations Institute for Training and Research, International Telecommunication Union, and International Solid Waste Association; 2020

3. Li W, Liu Q, Zhang Y, Li C, He Z, Choy WCH et al (2020) Biodegradable materials and Green Processing for Green. Electron Adv Mater 32(33):2001591

4. Zhu J, Wen H, Zhang H, Huang P, Liu L, Hu H (2023) Recent advances in biodegradable electronics- from fundament to the next-generation multi-functional, medical and environmental device. Sustain Mater Technol 35:e00530

5. Ben Halima N (2016) Poly(vinyl alcohol): review of its promising applications and insights into biodegradation. RSC Adv 6(46):39823–39832

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