Sofiah Abd Ghafar Nurhanis, Pasupuleti Jagadeesh, Samykano Mahendran, Kadirgama Kumaran, Koh Siaw Paw, Tiong Sieh Kieh, Pandey Adarsh Kumar, Yaw Chong Tak, Natarajan Sendhil Kumar
Institute of Sustainable Energy, Universiti Tenaga Nasional, Kajang 43000, Selangor, Malaysia.
Centre for Research in Advanced Fluid and Processes, Universiti Malaysia Pahang, Gambang 26300, Pahang, Malaysia.
Polymers (Basel). 2023 Jul 14;15(14):3044. doi: 10.3390/polym15143044.
Primary material supply is the heart of engineering and sciences. The depletion of natural resources and an increase in the human population by a billion in 13 to 15 years pose a critical concern regarding the sustainability of these materials; therefore, functionalizing renewable materials, such as nanocellulose, by possibly exploiting their properties for various practical applications, has been undertaken worldwide. Nanocellulose has emerged as a dominant green natural material with attractive and tailorable physicochemical properties, is renewable and sustainable, and shows biocompatibility and tunable surface properties. Nanocellulose is derived from cellulose, the most abundant polymer in nature with the remarkable properties of nanomaterials. This article provides a comprehensive overview of the methods used for nanocellulose preparation, structure-property and structure-property correlations, and the application of nanocellulose and its nanocomposite materials. This article differentiates the classification of nanocellulose, provides a brief account of the production methods that have been developed for isolating nanocellulose, highlights a range of unique properties of nanocellulose that have been extracted from different kinds of experiments and studies, and elaborates on nanocellulose potential applications in various areas. The present review is anticipated to provide the readers with the progress and knowledge related to nanocellulose. Pushing the boundaries of nanocellulose further into cutting-edge applications will be of particular interest in the future, especially as cost-effective commercial sources of nanocellulose continue to emerge.
主要材料供应是工程学和科学的核心。自然资源的枯竭以及在13至15年内全球人口增加10亿,引发了对这些材料可持续性的严重关切;因此,全世界都在致力于通过利用可再生材料(如纳米纤维素)的特性将其功能化,以用于各种实际应用。纳米纤维素已成为一种占主导地位的绿色天然材料,具有吸引人的且可定制的物理化学性质,可再生且可持续,并且具有生物相容性和可调节的表面性质。纳米纤维素源自纤维素,纤维素是自然界中最丰富的聚合物,具有纳米材料的卓越特性。本文全面概述了用于制备纳米纤维素的方法、结构-性能及结构-性能关系,以及纳米纤维素及其纳米复合材料的应用。本文区分了纳米纤维素的分类,简要介绍了已开发出的用于分离纳米纤维素的生产方法,突出了从各种实验和研究中提取的纳米纤维素的一系列独特性质,并阐述了纳米纤维素在各个领域的潜在应用。预计本综述将为读者提供与纳米纤维素相关的进展和知识。未来,将纳米纤维素进一步拓展到前沿应用领域将尤其令人关注,特别是随着具有成本效益的纳米纤维素商业来源不断涌现。