Energy and Charge Transport in 2D Atomic Layer Materials: Raman-Based Characterization

Nanomaterials (Basel). 2020 Sep 10;10(9):1807. doi: 10.3390/nano10091807.

Abstract

As they hold extraordinary mechanical and physical properties, two-dimensional (2D) atomic layer materials, including graphene, transition metal dichalcogenides, and MXenes, have attracted a great deal of attention. The characterization of energy and charge transport in these materials is particularly crucial for their applications. As noncontact methods, Raman-based techniques are widely used in exploring the energy and charge transport in 2D materials. In this review, we explain the principle of Raman-based thermometry in detail. We critically review different Raman-based techniques, which include steady state Raman, time-domain differential Raman, frequency-resolved Raman, and energy transport state-resolved Raman techniques constructed in the frequency domain, space domain, and time domain. Detailed outlooks are provided about Raman-based energy and charge transport in 2D materials and issues that need special attention.

Keywords: 2D materials; Raman spectroscopy; charge transport; energy transport.

Publication types

  • Review