Triaxially strained suspended graphene for large-area pseudo-magnetic fields

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Strain-engineered graphene has garnered much attention recently owing to the possibilities of creating substantial energy gaps enabled by pseudo-magnetic fields (PMFs). While theoretical works proposed the possibility of creating large-area PMFs by straining monolayer graphene along three crystallographic directions, clear experimental demonstration of such promising devices remains elusive. Herein, we experimentally demonstrate a triaxially strained suspended graphene structure that has the potential to possess large-scale and quasi-uniform PMFs. Our structure employs uniquely designed metal electrodes that function both as stressors and metal contacts for current injection. Raman characterization and tight-binding simulations suggest the possibility of achieving PMFs over a micrometer-scale area. Current-voltage measurements confirm an efficient current injection into graphene, showing the potential of our devices for a new class of optoelectronic applications. We also theoretically propose a photonic crystal-based laser structure that obtains strongly localized optical fields overlapping with the spatial area under uniform PMFs, thus presenting a practical route toward the realization of graphene lasers. (C) 2022 Optica Publishing Group
Publisher
Optica Publishing Group
Issue Date
2022-05
Language
English
Citation

OPTICS LETTERS, v.47, no.9, pp.2174 - 2177

ISSN
0146-9592
URI
http://hdl.handle.net/10203/320225
Appears in Collection
ME-Journal Papers(저널논문)
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