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材料可持续性的生物启发视角。

A Bio-Inspired Perspective on Materials Sustainability.

作者信息

Wagermaier Wolfgang, Razghandi Khashayar, Fratzl Peter

机构信息

Department of Biomaterials, Max Planck Institute of Colloids and Interfaces, Am Mühlenberg 1, 14476, Potsdam, Germany.

出版信息

Adv Mater. 2025 Jun;37(22):e2413096. doi: 10.1002/adma.202413096. Epub 2025 Jan 5.

Abstract

The article explores materials sustainability through a bio-inspired lens and discusses paradigms that can reshape the understanding of material synthesis, processing, and usage. It addresses various technological fields, from structural engineering to healthcare, and emphasizes natural material cycles as a blueprint for efficient recycling and reuse. The study shows that material functionality depends on both chemical composition and structural modifications, which emphasizes the role of material processing. The article identifies strategies such as mono-materiality and multifunctionality, and explores how responsivity, adaptivity, modularity, and cellularity can simplify material assembly and disassembly. Bioinspired strategies for reusing materials, defect tolerance, maintenance, remodeling, and healing may extend product lifespans. The principles of circularity, longevity, and parsimony are reconsidered in the context of "active materiality", a dynamic bio-inspired paradigm. This concept expands the traditional focus of material science from structure-function relationships to include the development of materials capable of responding or adapting to external stimuli. Concrete examples demonstrate how bio-inspired strategies are being applied in engineering and technology to enhance the sustainability of materials. The article concludes by emphasizing interdisciplinary collaboration as a key factor for developing a sustainable and resilient materials economy in harmony with nature's material cycles.

摘要

本文通过仿生视角探讨材料的可持续性,并讨论了能够重塑材料合成、加工和使用理解的范式。它涉及从结构工程到医疗保健等各个技术领域,并强调自然材料循环是高效回收和再利用的蓝图。研究表明,材料功能取决于化学成分和结构改性,这突出了材料加工的作用。本文确定了单一材料性和多功能性等策略,并探讨了响应性、适应性、模块化和细胞性如何能够简化材料的组装和拆卸。材料再利用、缺陷耐受性、维护、重塑和修复的仿生策略可能会延长产品寿命。在“活性物质性”这一动态仿生范式的背景下,重新审视了循环性、长寿性和简约性原则。这一概念将材料科学的传统重点从结构-功能关系扩展到包括能够响应或适应外部刺激的材料的开发。具体例子展示了仿生策略如何在工程和技术中应用,以提高材料的可持续性。本文最后强调跨学科合作是与自然材料循环和谐发展可持续和有韧性的材料经济的关键因素。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2df1/12138865/bd96e17c9c34/ADMA-37-2413096-g004.jpg

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