生物启发DNA塑料砖和砂浆结构:增强韧性,可回收性和可降解性。

Chem & Bio Engineering Pub Date : 2025-03-14 eCollection Date: 2025-05-22 DOI:10.1021/cbe.4c00190
Xiaofeng Li, Xi Shan, Jiadong Chen, Jun Zhu, Yang Chen, Xueyi Chen, Shahao Li, Mengze Lu, Yuhui Du, Panchao Yin, Tingjian Chen, Taolin Sun
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引用次数: 0

摘要

与传统的石油基塑料相比,生物基塑料具有可生物降解性的优势,使其能够自然地融入环境,并将其定位为更可持续的替代品。DNA是一种天然的生物聚合物,具有良好的生物相容性和可降解性。然而,目前生物质dna基材料的机械强度不如其他生物基和石油基塑料。在这项工作中,利用从洋葱中提取的DNA,通过双向冷冻、水蒸气退火和压缩致密化,制造出具有″“砖和砂浆”结构的DNA塑料。这种仿生设计显著提高了断裂韧性(~ 1.5 MPa·m1/2),同时具有DNA塑料的高弹性模量(~ 560mpa),使其优于或可与现有的生物基塑料和石油基塑料相媲美,从而将其定位为潜在的结构材料。对DNA塑料裂纹扩展行为的分析表明,DNA塑料的高韧性源于在多个长度尺度上运行的分层″砖与砂浆″结构,促进了从宏观到分子水平的多尺度断裂过程。此外,这些DNA塑料可以在水环境中有效回收,并被酶完全生物降解,具有很强的环境友好性和巨大的可持续发展潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bioinspired DNA Plastics with Brick-and-Mortar Structure: Enhanced Toughness, Recyclability, and Degradability.

Bio-based plastics offer the advantage of biodegradability over traditional petroleum-based plastics, enabling natural reintegration into the environment and positioning them as a more sustainable alternative. DNA, as a natural biopolymer, exhibits excellent biocompatibility and degradability. However, the mechanical strength of currently biomass DNA-based materials is inferior to that of other bio-based and petroleum-based plastics. In this work, DNA plastics with a ″brick-and-mortar" structure were fabricated using DNA extracted from onions through bidirectional freezing, water vapor annealing, and compression densification. This biomimetic design significantly enhances the fracture toughness (∼1.5 MPa·m1/2) while possessing a high elastic modulus (∼560 MPa) of DNA plastic, making it superior or comparable to existing bio-based plastics and petroleum-based plastics, and thus positioning it as a potential structural material. Analysis of crack propagation behavior in DNA plastics reveals that their high toughness stems from a hierarchical ″brick-and-mortar″ structure operating across multiple length scales, facilitating a multiscale fracture process from macroscopic to molecular levels. Furthermore, these DNA plastics can be efficiently recycled in aqueous environments and fully biodegraded by enzymes, demonstrating strong environmental friendliness and significant potential for sustainable development.

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