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Achieving near-perfect light absorption in atomically thin transition metal dichalcogenides through band nesting

Engineering and Technology

Achieving near-perfect light absorption in atomically thin transition metal dichalcogenides through band nesting

S. Lee, D. Seo, et al.

Discover the groundbreaking research on near-perfect light absorbers (NPLAs) using just a few layers of transition metal dichalcogenides (TMDs), achieving absorbance values as high as 99%. This study, conducted by esteemed researchers at the University of Minnesota and University of Notre Dame, opens up new possibilities for light absorption technology across the visible spectrum.... show more
Abstract
Near-perfect light absorbers (NPLAs), with absorbance, A, of at least 99%, have a wide range of applications ranging from energy and sensing devices to stealth technologies and secure communications. Previous work on NPLAs has mainly relied upon plasmonic structures or patterned metasurfaces, which require complex nanolithography, limiting their practical applications, particularly for large-area platforms. Here, we use the exceptional band nesting effect in TMDs, combined with a Salisbury screen geometry, to demonstrate NPLAs using only two or three uniform atomic layers of transition metal dichalcogenides (TMDs). The key innovation in our design, verified using theoretical calculations, is to stack monolayer TMDs in such a way as to minimize their interlayer coupling, thus preserving their strong band nesting properties. We experimentally demonstrate two feasible routes to controlling the interlayer coupling: twisted TMD bi-layers and TMD/buffer layer/TMD tri-layer heterostructures. Using these approaches, we demonstrate room-temperature values of A=95% at λ=2.8 eV with theoretically predicted values as high as 99%. Moreover, the chemical variety of TMDs allows us to design NPLAs covering the entire visible range, paving the way for efficient atomically-thin optoelectronics.
Publisher
Nature Communications
Published On
Jul 01, 2023
Authors
Seungjun Lee, Dongjea Seo, Sang Hyun Park, Nezhueytl Izquierdo, Eng Hock Lee, Rehan Younas, Guanyu Zhou, Milan Palei, Anthony J. Hoffman, Min Seok Jang, Christopher L. Hinkle, Steven J. Koester, Tony Low
Tags
light absorbers
transition metal dichalcogenides
NPLAs
absorbance
nanostructures
interlayer coupling
plasmonic structures
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