Visualization of Band Shifting and Interlayer Coupling in W x Mo 1- x S 2 Alloys Using Near-Field Broadband Absorption Microscopy.
Po-Wen TangShiue-Yuan ShiauHe-Chun ChouXin-Quan ZhangJia-Ru YuChun-Te SungYi-Hsien LeeChi ChenPublished in: ACS nano (2022)
Beyond-diffraction-limit optical absorption spectroscopy provides in-depth information on the graded band structures of composition-spread and stacked two-dimensional materials, in which direct/indirect bandgap, interlayer coupling, and defects significantly modify their optoelectronic functionalities such as photoluminescence efficiency. We here visualize the spatially varying band structure of monolayer and bilayer transition metal dichalcogenide alloys by using near-field broadband absorption microscopy. The near-field spectral and spatial information manifests the excitonic band shift that results from the interplay of composition spreading and interlayer coupling. These results enable us to identify, notably, the top layer of the bilayer alloy as pure WS 2 . We also use the aberration-free near-field transmission images to demarcate the exact boundaries of alloyed and pure transition metal dichalcogenides. This technology can offer valuable insights on various layered structures in the era of "stacking science" in the quest of quantum optoelectronic devices.
Keyphrases
- transition metal
- high resolution
- optical coherence tomography
- high speed
- single molecule
- room temperature
- high throughput
- solar cells
- quantum dots
- health information
- computed tomography
- molecular dynamics
- convolutional neural network
- machine learning
- gold nanoparticles
- label free
- single cell
- social media
- solid state
- walled carbon nanotubes