真菌黑色素-聚乳酸生物复合材料近地轨道辐射防护及结构稳定性研究

IF 9.4 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Radames J. B. Cordero, Kim K. de Groh, Quigly Dragotakes, Saranshu Singla, Christopher Maurer, Andrew Trunek, Arlene Chiu, Jonghyun Hwang, Sylvie Crowell, Theresa Benyo, Susanna M. Thon, Lynn J. Rothschild, Ali Dhinojwala, Arturo Casadevall
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引用次数: 0

摘要

低地球轨道上的材料面临辐射、原子氧侵蚀和极端温度波动,这些都会严重损害其结构和功能的完整性。开发能够承受这些恶劣条件的轻质多功能材料对于长期太空探索和可持续的外星定居点至关重要。本研究评估了暴露于LEO环境后聚乳酸(PLA)和生物复合材料的结构稳定性和辐射屏蔽效果,包括注入真菌黑色素、合成黑色素或动物黑色素的PLA,以及包裹PLA的压缩菌丝(CMy) (PLA-CMy)。样品在材料国际空间站实验-飞行设施平台上以天顶和尾流面向的方向部署了大约6个月。飞行后分析将飞行暴露的样品与地球对照进行比较,揭示了成分和方向依赖性的质量损失、光学性质和表面形态差异。值得注意的是,真菌黑色素减少了质量损失和表面皱纹的形成,表明在LEO中对PLA降解具有保护作用。生物复合材料还通过保护聚氯乙烯衬底层免受损伤而显示出屏蔽作用。这些发现证明了PLA在太空中的性能,并强调了真菌黑色素作为生物衍生添加剂可以增强PLA在LEO条件下的弹性,推动了未来太空任务中可持续材料的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Radiation protection and structural stability of fungal melanin polylactic acid biocomposites in low Earth orbit
Materials in low Earth orbit (LEO) face radiation, atomic oxygen erosion, and extreme temperature fluctuations, which can severely compromise their structural and functional integrity. Developing lightweight, multifunctional materials capable of withstanding these harsh conditions is critical for long-term space exploration and sustainable extraterrestrial settlements. This study evaluates the structural stability and radiation shielding efficacy of polylactic acid (PLA) and biocomposites, including PLA infused with fungal melanin, synthetic melanin, or animal melanin, and a compressed mycelium (CMy) coated with PLA (PLA-CMy), after exposure to the LEO environment. Samples were deployed on the Materials International Space Station Experiment–Flight Facility platform for approximately 6 mo in zenith- and wake-facing orientations. Postflight analyses comparing flight-exposed samples to Earth controls revealed composition- and orientation-dependent differences in mass loss, optical properties, and surface morphology. Notably, fungal melanin reduced mass loss and surface wrinkle formation, indicating a protective effect against PLA degradation in LEO. Biocomposites also demonstrated shielding effects by protecting an underlying polyvinyl chloride backing layer from damage. These findings demonstrate PLA’s performance in space and highlight fungal melanin as a bioderived additive to enhance PLA resilience under LEO conditions, advancing the development of sustainable materials for future space missions.
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来源期刊
CiteScore
19.00
自引率
0.90%
发文量
3575
审稿时长
2.5 months
期刊介绍: The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.
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