Department of Chemical Engineering, School of Chemical and Materials Engineering, National University of Sciences and Technology, Islamabad, 44000, Pakistan.
Department of Chemical Engineering, School of Chemical and Materials Engineering, National University of Sciences and Technology, Islamabad, 44000, Pakistan.
Chemosphere. 2023 Sep;336:139213. doi: 10.1016/j.chemosphere.2023.139213. Epub 2023 Jun 16.
Electronic are usually constructed from non-renewable, non-biodegradable, and hazardous materials. Due to the frequent upgrading or discarding of electronic devices, which contributes significantly to environmental pollution, there is a high demand for electronics made from renewable and biodegradable materials with less harmful components. To this end, due to their flexibility, strong mechanical, and optical properties, wood-based electronics have become very appealing as substrates especially for flexible electronics and optoelectronics. However, incorporating numerous features including high conductivity and transparency, flexibility, and mechanical robustness into an environmentally friendly electronic device remains very challenging. Herein, authors have provided the techniques used to fabricate sustainable wood based flexible electronics coupled with their chemical, mechanical, optical, thermal, thermomechanical, and surface properties for various applications. Additionally, the synthesis of a conductive ink based on lignin and the development of translucent wood as a substrate are covered. Future developments and broader applications of wood-based flexible materials are discussed in the final section of the study, with an emphasis on their potential in fields including wearable electronics, renewable energy, and biomedical devices. This research improves upon prior efforts by demonstrating new ways to simultaneously attain better mechanical and optical qualities and environmental sustainability.
电子产品通常由不可再生、不可生物降解和有害的材料制成。由于电子设备经常升级或丢弃,这对环境污染有很大的贡献,因此需要用可再生和可生物降解的材料以及含有较少有害物质的组件来制造电子产品。为此,由于木材具有柔韧性、良好的机械和光学性能,基于木材的电子产品已成为非常吸引人的基板,特别是对于柔性电子产品和光电子学。然而,将高导电性和透明度、柔韧性和机械强度等众多特性集成到环保电子设备中仍然极具挑战性。在此,作者提供了用于制造可持续的基于木材的柔性电子产品的技术,并结合了其化学、机械、光学、热学、热机械和表面性能,用于各种应用。此外,还介绍了基于木质素的导电油墨的合成和半透明木材作为基板的开发。在研究的最后一部分讨论了木材基柔性材料的未来发展和更广泛的应用,重点介绍了它们在可穿戴电子产品、可再生能源和生物医学设备等领域的潜在应用。这项研究通过展示新的方法来同时获得更好的机械和光学质量以及环境可持续性,改进了先前的工作。