Antony Jose Subin, Cowan Nicholas, Davidson Matthew, Godina Giovanni, Smith Ian, Xin Justin, Menezes Pradeep L
Department of Mechanical Engineering, University of Nevada-Reno, Reno, NV 89557, USA.
Nanomaterials (Basel). 2025 Feb 25;15(5):356. doi: 10.3390/nano15050356.
Cellulose nanofibers (CNFs), cellulose nanomaterials (CNMs), and cellulose-based composites represent a convergence of material science, sustainability, and advanced engineering, paving the way for innovative and eco-friendly materials. This paper presents a comprehensive review of these materials, encompassing their extraction, preparation methods, properties, applications, and future directions. The manufacturing of CNFs and CNMs leverages diverse techniques-chemical, mechanical, and enzymatic-with each offering distinct advantages in tailoring material characteristics to meet specific needs. Strategies for functionalization and surface modification are detailed, highlighting their role in enhancing the properties of CNFs and composites while addressing challenges in scaling production to industrial levels. The structural, mechanical, thermal, optical, electrical, and biocompatibility properties of CNFs, CNMs, and their composites are explored, underscoring their versatility for applications across various industries. Cellulose-based composites, in particular, demonstrate exceptional tunable properties for specific uses, although achieving uniform dispersion remains a key technical hurdle. These materials have applications in packaging, automotive, aerospace, biomedical devices, energy storage, and environmental remediation. Emerging research trends emphasize the integration of CNFs and CNMs with advanced manufacturing technologies, promoting sustainable practices and life cycle considerations while advancing their commercialization potential. This rapidly evolving field holds immense promise for addressing global challenges by creating high-performance, and sustainable materials. This review is crucial in advancing the understanding of cellulose nanofibers, nanomaterials, and cellulose-based composites, providing valuable insights that will drive the development of sustainable, high-performance materials for a wide range of applications, ultimately addressing key global challenges.
纤维素纳米纤维(CNFs)、纤维素纳米材料(CNMs)和纤维素基复合材料代表了材料科学、可持续性和先进工程学的融合,为创新型和环保型材料铺平了道路。本文对这些材料进行了全面综述,涵盖其提取、制备方法、性能、应用及未来发展方向。CNFs和CNMs的制造利用了多种技术——化学法、机械法和酶法——每种方法在根据特定需求定制材料特性方面都具有独特优势。详细介绍了功能化和表面改性策略,突出了它们在增强CNFs和复合材料性能方面的作用,同时解决了扩大生产规模至工业水平所面临的挑战。探讨了CNFs、CNMs及其复合材料的结构、机械、热、光学、电学和生物相容性等性能,强调了它们在各个行业应用中的多功能性。特别是纤维素基复合材料,尽管实现均匀分散仍是一个关键技术障碍,但在特定用途中表现出卓越的可调性能。这些材料在包装、汽车、航空航天、生物医学设备、能量存储和环境修复等领域都有应用。新兴研究趋势强调将CNFs和CNMs与先进制造技术相结合,在推进其商业化潜力的同时,促进可持续实践和生命周期考量。这个快速发展的领域通过创造高性能和可持续的材料,在应对全球挑战方面具有巨大潜力。这篇综述对于增进对纤维素纳米纤维、纳米材料和纤维素基复合材料的理解至关重要,提供了有价值的见解,将推动开发适用于广泛应用的可持续、高性能材料,最终应对关键的全球挑战。