Tang Rongdi, Xiong Sheng, Gong Daoxin, Deng Yaocheng, Wang Yongchang, Su Long, Ding Chunxia, Yang Lihua, Liao Chanjuan
College of Resources & Environment, Hunan Agricultural University, Changsha 410128, China.
School of Chemistry and Materials Science, Hunan Agricultural University, Changsha 410128, China.
ACS Appl Mater Interfaces. 2020 Dec 23;12(51):56663-56680. doi: 10.1021/acsami.0c12905. Epub 2020 Dec 11.
In 2011, with the successful isolation of TiC, a door of 2D layered MXene has been opened and received growing attention from researchers. MXene refers to a family of two-dimensional (2D) materials made up of atomic layers of the transition metal, carbide, nitrides, or carbonitrides. Given the large surface area, adjustable surface terminal groups, and excellent conductivity of MXene, it has shown exciting potential in photocatalysis, energy conversion, and many other fields. Among many 2D MXene, TiC was the most studied for its availability, low cost, facile modification procedure, and outstanding electronic properties. In previous investigations, TiC has shown huge potential in the photocatalysis area. TiC in a photocatalysis system can enhance the separation of photoinduced electrons and holes, reduce charge recombination, and thus improve the photocatalysis performance in many systems. To adjust the performance of TiC in different applications, the properties of TiC including morphology, structures, and stability are tunable by different post-processing method in the hybridized materials. In this review, an all-around understanding of the fabrication and modification methods of TiC and their connection to photocatalytic applications of TiC MXene based materials are presented. Moreover, a summary and our perspectives of TiC are given for further investigation.
2011年,随着TiC的成功分离,二维层状MXene的大门被打开,并受到研究人员越来越多的关注。MXene是指由过渡金属、碳化物、氮化物或碳氮化物的原子层组成的二维材料家族。鉴于MXene具有大表面积、可调节的表面端基和优异的导电性,它在光催化、能量转换等许多领域都显示出令人兴奋的潜力。在众多二维MXene中,TiC因其易得、低成本、简便的改性方法和出色的电子性能而受到最多研究。在先前的研究中,TiC在光催化领域已显示出巨大潜力。光催化体系中的TiC可以增强光生电子和空穴的分离,减少电荷复合,从而在许多体系中提高光催化性能。为了在不同应用中调节TiC的性能,在杂化材料中通过不同的后处理方法可以调节TiC的形态、结构和稳定性等性质。在这篇综述中,全面介绍了TiC的制备和改性方法及其与基于TiC MXene材料的光催化应用的联系。此外,还给出了TiC的总结和我们对进一步研究的展望。