Ultrasensitive acoustic graphene plasmons in a graphene-transition metal dichalcogenide heterostructure: Strong plasmon-phonon coupling and wavelength sensitivity enhanced by a metal screen

IF 10.5 2区 材料科学 Q1 CHEMISTRY, PHYSICAL
I.R. Lavor, Z.H. Tao, H.M. Dong, A. Chaves, F.M. Peeters, M.V. Milošević
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引用次数: 0

Abstract

Acoustic plasmons in graphene exhibit strong confinement induced by a proximate metal surface and hybridize with phonons of transition metal dichalcogenides (TMDs) when these materials are combined in a van der Waals heterostructure, thus forming screened graphene plasmon-phonon polaritons (SGPPPs), a type of acoustic mode. While SGPPPs are shown to be very sensitive to the dielectric properties of the environment, enhancing the SGPPPs coupling strength in realistic heterostructures is still challenging. Here we employ the quantum electrostatic heterostructure model, which builds upon the density functional theory calculations for monolayers, to show that the use of a metal as a substrate for graphene-TMD heterostructures (i) vigorously enhances the coupling strength between acoustic plasmons and the TMD phonons, and (ii) markedly improves the sensitivity of the plasmon wavelength on the structural details of the host platform in real space, thus allowing one to use the effect of environmental screening on acoustic plasmons to probe the structure and composition of a van der Waals heterostructure down to the monolayer resolution.

Abstract Image

石墨烯-过渡金属二卤化物异质结构中的超灵敏石墨烯声质子:金属屏蔽增强的强等离子体-声子耦合和波长灵敏度
石墨烯中的声质子在近似金属表面的诱导下表现出很强的约束性,当这些材料结合在范德华异质结构中时,会与过渡金属二卤化物(TMDs)的声子发生杂化,从而形成屏蔽石墨烯等离子体-声子极化子(SGPPPs),这是一种声学模式。虽然 SGPPPs 对环境的介电特性非常敏感,但在现实的异质结构中增强 SGPPPs 的耦合强度仍然具有挑战性。在此,我们采用量子静电异质结构模型(该模型建立在单层密度泛函理论计算的基础上)来证明,使用金属作为石墨烯-TMD 异质结构的基底 (i) 能显著增强声质子与 TMD 声子之间的耦合强度、和 (ii) 显著提高质子波长对实际空间中主平台结构细节的敏感性,从而使人们能够利用环境屏蔽对声质子的影响来探测范德华异质结构的结构和组成,直至单层分辨率。
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来源期刊
Carbon
Carbon 工程技术-材料科学:综合
CiteScore
20.80
自引率
7.30%
发文量
0
审稿时长
23 days
期刊介绍: The journal Carbon is an international multidisciplinary forum for communicating scientific advances in the field of carbon materials. It reports new findings related to the formation, structure, properties, behaviors, and technological applications of carbons. Carbons are a broad class of ordered or disordered solid phases composed primarily of elemental carbon, including but not limited to carbon black, carbon fibers and filaments, carbon nanotubes, diamond and diamond-like carbon, fullerenes, glassy carbon, graphite, graphene, graphene-oxide, porous carbons, pyrolytic carbon, and other sp2 and non-sp2 hybridized carbon systems. Carbon is the companion title to the open access journal Carbon Trends. Relevant application areas for carbon materials include biology and medicine, catalysis, electronic, optoelectronic, spintronic, high-frequency, and photonic devices, energy storage and conversion systems, environmental applications and water treatment, smart materials and systems, and structural and thermal applications.
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