Dengkang Guo, Wenting Ren, Sisi Yao, Jingpeng Li, Yan Yu, Fuxiang Chu
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引用次数: 0
摘要
面对塑料污染这一全球环境挑战,特别是热固性塑料的回收和生物降解问题,可持续替代品势在必行。快速生长的环保材料竹子作为一种可持续资源具有巨大潜力,但它缺乏塑料固有的自结合和可塑性。本研究提出了一种可行的方法,通过选择性地去除竹子的部分木质素并破坏纤维素的结晶结构来增强竹子的可塑性。同时,该工艺还能选择性地将羟基转化为高活性的二醛基,从而提高竹材的活性。生成的活化竹单元经过热压工艺后,就变成了一种热固性塑料(ABTP)。ABTP 具有很高的可塑性,其颜色可通过调整木质素含量进行精确调节。此外,它还具有出色的耐溶剂性和耐水性,以及显著的机械性能,包括 50 兆帕的拉伸强度、80 兆帕的弯曲强度、5 千兆帕的弯曲模量和接近 90 的邵氏 D 硬度。此外,这种竹制塑料还具有出色的可重复使用性和生物降解性,为传统塑料提供了可行且环保的替代品,同时还利用了竹子的可持续发展潜力。
Conversion of Bamboo into Strong, Waterproof, and Biodegradable Thermosetting Plastic through Cell Wall Structure Directed Manipulation.
Reckoning with the global environmental challenge of plastic pollution, particularly in terms of recycling and biodegradation of thermosetting plastics, sustainable alternatives are imperative. The rapidly growing and eco-friendly material bamboo has great potential as a sustainable resource; however, it lacks the inherent self-bonding and plasticity characteristics found in plastics. This study presents a feasible approach to enhance the plasticity of bamboo by selectively removing part of its lignin and disrupting the crystalline structure of cellulose. Concurrently, this process selectively transforms hydroxyl groups into highly reactive dialdehyde groups to increase the reactivity of bamboo. The resulting activated bamboo units undergo a hot-pressing process to transform them into a type of thermosetting plastic (ABTP). The ABTP is highly moldable, and its color can be precisely regulated by adjusting the lignin content. Additionally, it exhibits exceptional solvent and water resistance, along with notable mechanical properties, including a tensile strength of 50 MPa, flexural strength of 80 MPa, flexural modulus of 5 GPa, and Shore D hardness approaching 90. Furthermore, the bamboo-derived plastic exhibits exceptional reusability and biodegradability, presenting feasible and environmentally friendly alternatives to conventional plastics while harnessing the sustainable development potential of bamboo.
期刊介绍:
ACS Nano, published monthly, serves as an international forum for comprehensive articles on nanoscience and nanotechnology research at the intersections of chemistry, biology, materials science, physics, and engineering. The journal fosters communication among scientists in these communities, facilitating collaboration, new research opportunities, and advancements through discoveries. ACS Nano covers synthesis, assembly, characterization, theory, and simulation of nanostructures, nanobiotechnology, nanofabrication, methods and tools for nanoscience and nanotechnology, and self- and directed-assembly. Alongside original research articles, it offers thorough reviews, perspectives on cutting-edge research, and discussions envisioning the future of nanoscience and nanotechnology.