Limits of funneling efficiency in non-uniformly strained 2D semiconductors

Fuente: arXiv
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Main Authors: Harats, Moshe G., Bolotin, Kirill I.
Format: Preprint
Published: 2020
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author Harats, Moshe G.
Bolotin, Kirill I.
author_facet Harats, Moshe G.
Bolotin, Kirill I.
contents Photoexcited electron-hole pairs (excitons) in transition metal dichalcogenides (TMDC) experience an effective force when these materials are non-uniformly strained. In the case of strain produced by a sharp tip pressing at the center of a suspended TMDC membrane, the excitons are transported to the point of the highest strain at the center of the membrane. This effect, exciton funneling, can be used to increase photoconversion efficiency in TMDC, to explore exciton transport, and to study correlated states of excitons arising at their high densities. Here, we analyze the limits of funneling efficiency in realistic device geometries. The funneling efficiency in realistic monolayer TMDCs is found to be low, $ <5 \;\%$ both at room and low temperatures. This results from dominant diffusion at room temperature and short exciton lifetimes at low temperatures. On the other hand, in TMDC heterostructures with long exciton lifetimes the funneling efficiency reaches $\sim 50\;\%$ at room temperature, as the exciton density reaches thermal equilibrium in the funnel. Finally, we show that Auger recombination limits funneling efficiency for intense illumination sources.
format Preprint
id arxiv_https___arxiv_org_abs_2006_04495
institution arXiv
publishDate 2020
record_format arxiv
spellingShingle Limits of funneling efficiency in non-uniformly strained 2D semiconductors
Harats, Moshe G.
Bolotin, Kirill I.
Mesoscale and Nanoscale Physics
Soft Condensed Matter
Photoexcited electron-hole pairs (excitons) in transition metal dichalcogenides (TMDC) experience an effective force when these materials are non-uniformly strained. In the case of strain produced by a sharp tip pressing at the center of a suspended TMDC membrane, the excitons are transported to the point of the highest strain at the center of the membrane. This effect, exciton funneling, can be used to increase photoconversion efficiency in TMDC, to explore exciton transport, and to study correlated states of excitons arising at their high densities. Here, we analyze the limits of funneling efficiency in realistic device geometries. The funneling efficiency in realistic monolayer TMDCs is found to be low, $ <5 \;\%$ both at room and low temperatures. This results from dominant diffusion at room temperature and short exciton lifetimes at low temperatures. On the other hand, in TMDC heterostructures with long exciton lifetimes the funneling efficiency reaches $\sim 50\;\%$ at room temperature, as the exciton density reaches thermal equilibrium in the funnel. Finally, we show that Auger recombination limits funneling efficiency for intense illumination sources.
title Limits of funneling efficiency in non-uniformly strained 2D semiconductors
topic Mesoscale and Nanoscale Physics
Soft Condensed Matter
url https://arxiv.org/abs/2006.04495