Exciton manipulation in rippled transition metal dichalcogenides?
Nanoscale Pub Date: 2020-09-22 DOI: 10.1039/D0NR05602B
Abstract
Two-dimensional (2D) transition metal dichalcogenides (TMDs) have shown tremendous potential for applications in optoelectronics due to strong light–matter coupling. However, little is known about how to alter and control the excitonic properties in TMD monolayers. Here, based on many-body perturbation theory via the GW approach and Bethe–Salpeter equation, we systematically investigate exciton manipulation in rippled TMD monolayers. Our results demonstrate that local strain induced by structure deformation plays an important role in determining the electronic and optical properties of TMD materials. Instead of delocalizing in flat monolayers, excitons are pushed to accumulate at the regions with high tensile stress in rippled structure, which can be ascribed to the excitonic funnel effect. In addition, when build-in electric field is also applied, the localized excitons are spatially separated along the zigzag direction, resulting in long exciton lifetime, thus facilitating their future applications in light detecting and harvesting. Our findings provide a way to tailor the excitonic properties in 2D materials and promote their performance in optoelectronic and photovoltaic devices.
Recommended Literature
- [1] Evolution of shape, size, and areal density of a single plane of Si nanocrystals embedded in SiO2 matrix studied by atom probe tomography Bin Han,Yasuo Shimizu,Gabriele Seguini,Celia Castro,Gérard Ben Assayag,Koji Inoue,Yasuyoshi Nagai,Sylvie Schamm-Chardon,Michele PeregoRSC Adv., 2016,6, 3617-3622 10.1039/C5RA26710B
- [2] Ester-directed orthogonal dual C–H activation and ortho aryl C–H alkenylation via distal weak coordination? Manickam Bakthadoss,Tadiparthi Thirupathi Reddy,Vishal Agarwal,Duddu S. SharadaChem. Commun., 2022,58, 1406-1409 10.1039/D1CC06097J
- [3] Exciton manipulation in rippled transition metal dichalcogenides? Chen Long,Ying Dai,Jianwei Li,Hao JinNanoscale, 2020,12, 21124-21130 10.1039/D0NR05602B
- [4] Fast-pulsing NMR techniques for the detection of weak interactions: successful natural abundance probe of hydrogen bonds in peptides? Amandine Altmayer-Henzien,Valérie Declerck,David J. Aitken,Ewen Lescop,Denis Merlet,Jonathan FarjonOrg. Biomol. Chem., 2013,11, 7611-7615 10.1039/C3OB41876F
- [5] Dissolved oxygen sensor based on fluorescence quenching of oxygen-sensitive ruthenium complexes immobilized in sol–gel-derived porous silica coatings Analyst, 1996,121, 785-788 10.1039/AN9962100785
- [6] Distinction of trans–cis photoisomers with comparable optical properties in multiple-state photochromic systems – examining a molecule with three azobenzenes via in situ irradiation NMR spectroscopy? Jonas Kind,Lukas Kaltschnee,Martin Leyendecker,Christina M. ThieleChem. Commun., 2016,52, 12506-12509 10.1039/C6CC06771A
- [7] Emerging investigator series: first-principles and thermodynamics comparison of compositionally-tuned delafossites: cation release from the (001) surface of complex metal oxides? Joseph W. Bennett,Diamond T. Jones,Blake G. Hudson,Joshua Melendez-Rivera,Robert J. Hamers,Sara E. MasonEnviron. Sci.: Nano, 2020,7, 1642-1651 10.1039/C9EN01304K
- [8] Fe3O4 nanosphere@microporous organic networks: enhanced anode performances in lithium ion batteries through carbonization? Byungho Lim,Jaewon Jin,Jin Yoo,Seung Yong Han,Kyeongyeol Kim,Sungah Kang,Nojin Park,Sang Moon Lee,Hae Jin Kim,Seung Uk SonChem. Commun., 2014,50, 7723-7726 10.1039/C4CC02068E
- [9] Emerging investigators Polym. Chem., 2015,6, 5501-5502 10.1039/C5PY90111A
- [10] Enabling chloride salts for thermal energy storage: implications of salt purity? J. Matthew Kurley,Phillip W. Halstenberg,Abbey McAlister,Stephen Raiman,Richard T. MayesRSC Adv., 2019,9, 25602-25608 10.1039/C9RA03133B
Journal Name:Nanoscale
research_products
-
CAS no.: 89640-58-4