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溶液沉积MoS薄膜的剥离过程相关光学性质

Exfoliation procedure-dependent optical properties of solution deposited MoS films.

作者信息

Busch Robert T, Sun Lirong, Austin Drake, Jiang Jie, Miesle Paige, Susner Michael A, Conner Benjamin S, Jawaid Ali, Becks Shannon T, Mahalingam Krishnamurthy, Velez Michael A, Torsi Riccardo, Robinson Joshua A, Rao Rahul, Glavin Nicholas R, Vaia Richard A, Pachter Ruth, Joshua Kennedy W, Vernon Jonathan P, Stevenson Peter R

机构信息

Materials and Manufacturing Directorate, Air Force Research Laboratory, Wright-Patterson Air Force Base, Dayton, OH 45433 USA.

UES, Inc., 4401 Dayton Xenia Road, Dayton, OH 45432 USA.

出版信息

NPJ 2D Mater Appl. 2023;7(1):12. doi: 10.1038/s41699-023-00376-2. Epub 2023 Feb 24.

DOI:10.1038/s41699-023-00376-2
PMID:38665486
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11041683/
Abstract

The development of high-precision large-area optical coatings and devices comprising low-dimensional materials hinges on scalable solution-based manufacturability with control over exfoliation procedure-dependent effects. As such, it is critical to understand the influence of technique-induced transition metal dichalcogenide (TMDC) optical properties that impact the design, performance, and integration of advanced optical coatings and devices. Here, we examine the optical properties of semiconducting MoS films from the exfoliation formulations of four prominent approaches: solvent-mediated exfoliation, chemical exfoliation with phase reconversion, redox exfoliation, and native redox exfoliation. The resulting MoS films exhibit distinct refractive indices (), extinction coefficients (), dielectric functions (ε and ε), and absorption coefficients (α). For example, a large index contrast of Δ ≈ 2.3 is observed. These exfoliation procedures and related chemistries produce different exfoliated flake dimensions, chemical impurities, carrier doping, and lattice strain that influence the resulting optical properties. First-principles calculations further confirm the impact of lattice defects and doping characteristics on MoS optical properties. Overall, incomplete phase reconfiguration (from 1T to mixed crystalline 2H and amorphous phases), lattice vacancies, intraflake strain, and Mo oxidation largely contribute to the observed differences in the reported MoS optical properties. These findings highlight the need for controlled technique-induced effects as well as the opportunity for continued development of, and improvement to, liquid phase exfoliation methodologies. Such chemical and processing-induced effects present compelling routes to engineer exfoliated TMDC optical properties toward the development of next-generation high-performance mirrors, narrow bandpass filters, and wavelength-tailored absorbers.

摘要

包含低维材料的高精度大面积光学涂层和器件的发展取决于基于溶液的可扩展可制造性以及对与剥离过程相关的效应的控制。因此,了解技术诱导的过渡金属二硫属化物(TMDC)光学性质对先进光学涂层和器件的设计、性能及集成的影响至关重要。在此,我们研究了通过四种主要方法的剥离配方得到的半导体MoS薄膜的光学性质:溶剂介导剥离、相转化化学剥离、氧化还原剥离和天然氧化还原剥离。所得MoS薄膜表现出不同的折射率()、消光系数()、介电函数(ε和ε)以及吸收系数(α)。例如,观察到约Δ ≈ 2.3的大折射率对比度。这些剥离过程及相关化学过程产生了不同的剥离薄片尺寸、化学杂质、载流子掺杂和晶格应变,从而影响所得的光学性质。第一性原理计算进一步证实了晶格缺陷和掺杂特性对MoS光学性质的影响。总体而言,不完全的相重构(从1T到混合晶体2H和非晶相)、晶格空位、薄片内应变和Mo氧化在很大程度上导致了所报道的MoS光学性质的观察差异。这些发现凸显了控制技术诱导效应的必要性,以及液相剥离方法持续发展和改进的机会。这种化学和加工诱导效应为设计剥离的TMDC光学性质以开发下一代高性能镜子、窄带通滤波器和波长定制吸收器提供了引人注目的途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7126/11041683/903f59722029/41699_2023_376_Fig7_HTML.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7126/11041683/903f59722029/41699_2023_376_Fig7_HTML.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7126/11041683/a5bfc603f80e/41699_2023_376_Fig1_HTML.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7126/11041683/371adf879de7/41699_2023_376_Fig3_HTML.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7126/11041683/83664571a91a/41699_2023_376_Fig4_HTML.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7126/11041683/f2dada3be7e5/41699_2023_376_Fig5_HTML.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7126/11041683/53439b63392e/41699_2023_376_Fig6_HTML.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7126/11041683/903f59722029/41699_2023_376_Fig7_HTML.jpg

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