Chen Hongwu, Ma Hongyun, Li Chun
Key Lab of Organic Optoelectronics and Molecular Engineering of Ministry of Education, Department of Chemistry, Tsinghua University, Beijing 100084, China.
ACS Nano. 2021 Oct 26;15(10):15502-15537. doi: 10.1021/acsnano.1c04423. Epub 2021 Oct 1.
The ever-increasing demand on developing layered materials for practical applications, such as electrochemical energy storage, responsive materials, nanofluidics, and environmental remediation, requires the profound understanding and artful exploitation of interlayer engineering or intercalation chemistry. The past decade has witnessed the massive exploration of a recently discovered 2D material-transition metal carbides, carbonitrides, and nitrides (referred to as MXenes), which began to take hold of a myriad of applications owing to the abundant possibilities on their compositions and intercalation states. However, application-targeted manipulation of the material performance of MXenes is constrained by the dearth of deep comprehension on fundamental intercalation chemistry/physics. To this end, the aim of this review is to provide a holistic discussion on the intercalation chemistry in MXenes and the physical properties of MXene intercalation compounds. On the basis of this, potential solutions for the challenges confronted in the synthesis, tuning of material properties, and practical applications are proposed, which are also expected to reinvigorate the exploration of layered materials that are similar to MXenes.
对于开发用于实际应用的层状材料,如电化学储能、响应材料、纳米流体和环境修复等,需求不断增长,这就需要对层间工程或插层化学有深入的理解和巧妙的利用。在过去十年中,人们对最近发现的二维材料——过渡金属碳化物、碳氮化物和氮化物(称为MXenes)进行了大量探索,由于其组成和插层状态具有丰富的可能性,这些材料开始在众多应用中崭露头角。然而,针对应用目标对MXenes材料性能进行调控受到对基本插层化学/物理缺乏深入理解的限制。为此,本综述的目的是对MXenes中的插层化学以及MXene插层化合物的物理性质进行全面讨论。在此基础上,针对合成、材料性能调控和实际应用中面临的挑战提出了潜在的解决方案,这些方案也有望重振对与MXenes类似的层状材料的探索。