Trion transfer in mixed-dimensional heterostructures

Fuente: arXiv
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Auteurs principaux: Fang, N., Erkilic, U., Chang, Y. R., Fujii, S., Yamashita, D., Fong, C. F., Morito, S., Kanahashi, K., Taniguchi, T., Watanabe, K., Ueno, K., Nagashio, K., Kato, Y. K.
Format: Preprint
Publié: 2026
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author Fang, N.
Erkilic, U.
Chang, Y. R.
Fujii, S.
Yamashita, D.
Fong, C. F.
Morito, S.
Kanahashi, K.
Taniguchi, T.
Watanabe, K.
Ueno, K.
Nagashio, K.
Kato, Y. K.
author_facet Fang, N.
Erkilic, U.
Chang, Y. R.
Fujii, S.
Yamashita, D.
Fong, C. F.
Morito, S.
Kanahashi, K.
Taniguchi, T.
Watanabe, K.
Ueno, K.
Nagashio, K.
Kato, Y. K.
contents Charged excitons, or trions, offering unique spin and charge degrees of freedom, have primarily been investigated in doped systems where charges are long considered indispensable. Here, we present an alternative route to ultra-efficient trion emission from an intrinsic, defect-free semiconductor via a transfer mechanism. By exciting trions in two-dimensional tungsten-diselenide donors and transferring them into one-dimensional carbon-nanotube acceptors in mixed-dimensional heterostructures, we circumvent the usual carrier requirement, overcoming intrinsic Auger-quenching limitations. Benefitting from a reservoir effect induced by dimensional heterogeneity, this process achieves trion emission efficiencies increased by over 100-fold compared to conventional doping-based approaches, and remains robust across diverse doping conditions. Our findings extend the exciton transfer paradigm to the three-body quasiparticles, offering a new platform for advancing excitonic physics and trion-based optoelectronic/spintronic applications.
format Preprint
id arxiv_https___arxiv_org_abs_2602_13490
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Trion transfer in mixed-dimensional heterostructures
Fang, N.
Erkilic, U.
Chang, Y. R.
Fujii, S.
Yamashita, D.
Fong, C. F.
Morito, S.
Kanahashi, K.
Taniguchi, T.
Watanabe, K.
Ueno, K.
Nagashio, K.
Kato, Y. K.
Mesoscale and Nanoscale Physics
Charged excitons, or trions, offering unique spin and charge degrees of freedom, have primarily been investigated in doped systems where charges are long considered indispensable. Here, we present an alternative route to ultra-efficient trion emission from an intrinsic, defect-free semiconductor via a transfer mechanism. By exciting trions in two-dimensional tungsten-diselenide donors and transferring them into one-dimensional carbon-nanotube acceptors in mixed-dimensional heterostructures, we circumvent the usual carrier requirement, overcoming intrinsic Auger-quenching limitations. Benefitting from a reservoir effect induced by dimensional heterogeneity, this process achieves trion emission efficiencies increased by over 100-fold compared to conventional doping-based approaches, and remains robust across diverse doping conditions. Our findings extend the exciton transfer paradigm to the three-body quasiparticles, offering a new platform for advancing excitonic physics and trion-based optoelectronic/spintronic applications.
title Trion transfer in mixed-dimensional heterostructures
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2602.13490