State Key Laboratory of Bio-Fibers and Eco-Textiles, College of Materials Science and Engineering, Qingdao University, Qingdao 266071, PR China.
Key Laboratory of Chemical Engineering in South Xinjiang, College of Life Science, Tarim University, Alar 843300, PR China.
Adv Colloid Interface Sci. 2022 Feb;300:102596. doi: 10.1016/j.cis.2021.102596. Epub 2021 Dec 29.
Owing to the natural abundance, easy availability, high stability, non-stoichiometry, and chemical diversity, considerable interest has been devoted to tungsten oxide (WO) nanomaterials, and many advances have been achieved ranging from traditional catalysts and electronics to emerging artificial intelligence. This review focuses on recent progress of WO polymorphs and their multifunctional applications. The structural diversity and crystal phase transitions of WO and recent advances on the general synthesis of various WO nanostructures are first summarized, since the crystal structure and morphology adjustment obviously affect the physiochemical merits of WO materials. Then, their applications and related mechanisms in different fields are demonstrated, such as gas sensing, chromogenic (electro-, photo-, gaso-, and thermochromic), photocatalytic (pollutant degradation and water splitting), and emerging applications (biomedical, antibiotic, and artificial intelligence). With the advances highlighted here and the ongoing research efforts, the continuous breakthrough in functionalized WO nanostructure and their attractive applications is foreseeable in the future.
由于其丰富的自然资源、易于获取、高稳定性、非化学计量比和化学多样性,氧化钨(WO)纳米材料引起了广泛关注,在传统催化剂和电子学领域到新兴的人工智能领域都取得了许多进展。本综述重点介绍了 WO 多晶型物及其多功能应用的最新进展。首先总结了 WO 的结构多样性和晶体相转变以及各种 WO 纳米结构的一般合成方法的最新进展,因为晶体结构和形态的调整明显影响 WO 材料的物理化学性质。然后,展示了它们在不同领域的应用和相关机制,例如气体传感、显色(电致变色、光致变色、气致变色和热致变色)、光催化(污染物降解和水分解)以及新兴应用(生物医学、抗生素和人工智能)。有了这里强调的进展和正在进行的研究工作,可以预见未来功能性 WO 纳米结构及其有吸引力的应用将不断取得突破。