Multifunctional Biocomposite Materials from Chlorella vulgaris Microalgae.

IF 27.4 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Israel Kellersztein, Daniel Tish, John Pederson, Martin Bechthold, Chiara Daraio
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Abstract

Extrusion 3D-printing of biopolymers and natural fiber-based biocomposites enables the fabrication of complex structures, ranging from implants' scaffolds to eco-friendly structural materials. However, conventional polymer extrusion requires high energy consumption to reduce viscosity, and natural fiber reinforcement often requires harsh chemical treatments to improve adhesion. We address these challenges by introducing a sustainable framework to fabricate natural biocomposites using Chlorella vulgaris microalgae as the matrix. Through bioink optimization and process refinement, we produced lightweight, multifunctional materials with hierarchical architectures. Infrared spectroscopy analysis reveals that hydrogen bonding plays a critical role in the binding and reinforcement of Chlorella cells by hydroxyethyl cellulose (HEC). As water content decreases, the hydrogen bonding network evolves from water-mediated interactions to direct hydrogen bonds between HEC and Chlorella, enhancing the mechanical properties. A controlled dehydration process maintains continuous microalgae morphology, preventing cracking. The resulting biocomposites exhibit a bending stiffness of 1.6 GPa and isotropic heat transfer and thermal conductivity of 0.10 W/mK at room temperature, demonstrating effective thermal insulation. These characteristics make Chlorella biocomposites promising candidates for applications requiring both structural performance and thermal insulation, offering a sustainable alternative to conventional materials in response to growing environmental demands.

Abstract Image

小球藻微藻类多功能生物复合材料。
生物聚合物和天然纤维生物复合材料的挤压 3D 打印技术能够制造复杂的结构,从植入物支架到生态友好型结构材料,不一而足。然而,传统的聚合物挤压需要消耗大量能源来降低粘度,而天然纤维加固通常需要进行苛刻的化学处理以提高粘附性。为了应对这些挑战,我们引入了一种可持续的框架,利用小球藻作为基质来制造天然生物复合材料。通过生物墨水优化和工艺改进,我们生产出了具有分层结构的轻质多功能材料。红外光谱分析显示,氢键在羟乙基纤维素(HEC)结合和强化小球藻细胞的过程中发挥了关键作用。随着含水量的降低,氢键网络从水介导的相互作用演变为羟乙基纤维素与小球藻之间的直接氢键,从而增强了机械性能。受控脱水过程可保持微藻的连续形态,防止开裂。由此制成的生物复合材料的弯曲刚度为 1.6 GPa,各向同性传热和导热系数在室温下为 0.10 W/mK,显示出有效的隔热性能。这些特性使得小球藻生物复合材料有望应用于对结构性能和隔热性能都有要求的领域,为应对日益增长的环境需求提供了一种可替代传统材料的可持续材料。
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来源期刊
Advanced Materials
Advanced Materials 工程技术-材料科学:综合
CiteScore
43.00
自引率
4.10%
发文量
2182
审稿时长
2 months
期刊介绍: Advanced Materials, one of the world's most prestigious journals and the foundation of the Advanced portfolio, is the home of choice for best-in-class materials science for more than 30 years. Following this fast-growing and interdisciplinary field, we are considering and publishing the most important discoveries on any and all materials from materials scientists, chemists, physicists, engineers as well as health and life scientists and bringing you the latest results and trends in modern materials-related research every week.
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