Center of Research Excellence in Nanotechnology (CENT), King Fahd University of Petroleum & Minerals (KFUPM), KFUPM Box 5040, Dhahran, 31261, Saudi Arabia.
Physics Department, King Fahd University of Petroleum & Minerals, Dhahran, 31261, Saudi Arabia.
Chem Rec. 2021 Jul;21(7):1631-1665. doi: 10.1002/tcr.202100135. Epub 2021 Jun 15.
Nanotechnology has transformed the world with its diverse applications, ranging from industrial developments to impacting our daily lives. It has multiple applications throughout financial sectors and enables the development of facilitating scientific endeavors with extensive commercial potentials. Nanomaterials, especially the ones which have shown biomedical and other health-related properties, have added new dimensions to the field of nanotechnology. Recently, the use of bioresources in nanotechnology has gained significant attention from the scientific community due to its 100 % eco-friendly features, availability, and low costs. In this context, jute offers a considerable potential. Globally, its plant produces the second most common natural cellulose fibers and a large amount of jute sticks as a byproduct. The main chemical compositions of jute fibers and sticks, which have a trace amount of ash content, are cellulose, hemicellulose, and lignin. This makes jute as an ideal source of pure nanocellulose, nano-lignin, and nanocarbon preparation. It has also been used as a source in the evolution of nanomaterials used in various applications. In addition, hemicellulose and lignin, which are extractable from jute fibers and sticks, could be utilized as a reductant/stabilizer for preparing other nanomaterials. This review highlights the status and prospects of jute in nanotechnology. Different research areas in which jute can be applied, such as in nanocellulose preparation, as scaffolds for other nanomaterials, catalysis, carbon preparation, life sciences, coatings, polymers, energy storage, drug delivery, fertilizer delivery, electrochemistry, reductant, and stabilizer for synthesizing other nanomaterials, petroleum industry, paper industry, polymeric nanocomposites, sensors, coatings, and electronics, have been summarized in detail. We hope that these prospects will serve as a precursor of jute-based nanotechnology research in the future.
纳米技术以其多样化的应用改变了世界,涵盖了从工业发展到影响我们日常生活的各个方面。它在金融领域有多种应用,并为具有广泛商业潜力的科学研究提供了便利。纳米材料,特别是那些具有生物医学和其他健康相关特性的材料,为纳米技术领域增添了新的维度。最近,由于其 100%的环保特性、可用性和低成本,生物资源在纳米技术中的应用引起了科学界的极大关注。在这方面,黄麻具有相当大的潜力。在全球范围内,其植物生产的第二大常见天然纤维素纤维和大量黄麻棒作为副产品。黄麻纤维和棒材的主要化学成分,其灰分含量很少,是纤维素、半纤维素和木质素。这使得黄麻成为制备纯纳米纤维素、纳米木质素和纳米碳的理想原料。它也被用作各种应用中使用的纳米材料的来源。此外,从黄麻纤维和棒材中提取的半纤维素和木质素可用作制备其他纳米材料的还原剂/稳定剂。本文综述了黄麻在纳米技术中的现状和前景。黄麻可以应用于不同的研究领域,例如纳米纤维素的制备、作为其他纳米材料的支架、催化、碳的制备、生命科学、涂料、聚合物、储能、药物输送、肥料输送、电化学、还原剂和稳定剂用于合成其他纳米材料、石油工业、造纸工业、聚合物纳米复合材料、传感器、涂料和电子等领域,已经得到了详细的总结。我们希望这些前景将为未来的黄麻基纳米技术研究提供参考。