School of Physics, Frontiers Science Center for Mobile Information Communication and Security, Southeast University, Nanjing 211189, China.
School of Environmental and Biological Engineering, Nanjing University of Science and Technology, Nanjing 210094, China.
Molecules. 2023 Jan 18;28(3):959. doi: 10.3390/molecules28030959.
Two-dimensional metal chalcogenides (2D-MCs) with complex interactions are usually rich in phase transition behavior, such as superconductivity, charge density wave (CDW), and magnetic transitions, which hold great promise for the exploration of exciting physical properties and functional applications. Interlayer chemical modulation, as a renewed surface modification method, presents congenital advantages to regulate the phase transitions of 2D-MCs due to its confined space, strong guest-host interactions, and local and reversible modulation without destructing the host lattice, whereby new phenomena and functionalities can be produced. Herein, recent achievements in the interlayer chemical modulation of 2D-MCs are reviewed from the aspects of superconducting transition, CDW transition, semiconductor-to-metal transition, magnetic phase transition, and lattice transition. We systematically discuss the roles of charge transfer, spin coupling, and lattice strain on the modulation of phase transitions in the guest-host architectures of 2D-MCs established by electrochemical intercalation, solution-processed intercalation, and solid-state intercalation. New physical phenomena, new insight into the mechanism of phase transitions, and derived functional applications are presented. Finally, a prospectus of the challenges and opportunities of interlayer chemical modulation for future research is pointed out.
二维金属硫属化物(2D-MCs)具有复杂的相互作用,通常富含相变行为,如超导、电荷密度波(CDW)和磁转变,这为探索令人兴奋的物理性质和功能应用提供了巨大的潜力。层间化学调制作为一种新兴的表面改性方法,由于其受限的空间、较强的主客体相互作用以及局部和可逆的调制而无需破坏主体晶格,具有先天优势来调节 2D-MCs 的相变,从而产生新的现象和功能。本文从超导转变、CDW 转变、半导体-金属转变、磁相变和晶格转变等方面综述了二维 MCs 的层间化学调制的最新进展。我们系统地讨论了通过电化学插层、溶液处理插层和固态插层在 2D-MCs 的主客体结构中建立的电荷转移、自旋耦合和晶格应变对相变调制的作用。呈现了新的物理现象、对相变机制的新见解以及衍生的功能应用。最后,指出了层间化学调制在未来研究中面临的挑战和机遇的展望。