TY - JOUR
T1 - Active control of micrometer plasmon propagation in suspended graphene
AU - Hu, Hai
AU - Yu, Renwen
AU - Teng, Hanchao
AU - Hu, Debo
AU - Chen, Na
AU - Qu, Yunpeng
AU - Yang, Xiaoxia
AU - Chen, Xinzhong
AU - McLeod, A. S.
AU - Alonso-González, Pablo
AU - Guo, Xiangdong
AU - Li, Chi
AU - Yao, Ziheng
AU - Li, Zhenjun
AU - Chen, Jianing
AU - Sun, Zhipei
AU - Liu, Mengkun
AU - García de Abajo, F. Javier
AU - Dai, Qing
N1 - Publisher Copyright:
© 2022, The Author(s).
PY - 2022/12
Y1 - 2022/12
N2 - Due to the two-dimensional character of graphene, the plasmons sustained by this material have been invariably studied in supported samples so far. The substrate provides stability for graphene but often causes undesired interactions (such as dielectric losses, phonon hybridization, and impurity scattering) that compromise the quality and limit the intrinsic flexibility of graphene plasmons. Here, we demonstrate the visualization of plasmons in suspended graphene at room temperature, exhibiting high-quality factor Q~33 and long propagation length > 3 μm. We introduce the graphene suspension height as an effective plasmonic tuning knob that enables in situ change of the dielectric environment and substantially modulates the plasmon wavelength, propagation length, and group velocity. Such active control of micrometer plasmon propagation facilitates near-unity-order modulation of nanoscale energy flow that serves as a plasmonic switch with an on-off ratio above 14. The suspended graphene plasmons possess long propagation length, high tunability, and controllable energy transmission simultaneously, opening up broad horizons for application in nano-photonic devices.
AB - Due to the two-dimensional character of graphene, the plasmons sustained by this material have been invariably studied in supported samples so far. The substrate provides stability for graphene but often causes undesired interactions (such as dielectric losses, phonon hybridization, and impurity scattering) that compromise the quality and limit the intrinsic flexibility of graphene plasmons. Here, we demonstrate the visualization of plasmons in suspended graphene at room temperature, exhibiting high-quality factor Q~33 and long propagation length > 3 μm. We introduce the graphene suspension height as an effective plasmonic tuning knob that enables in situ change of the dielectric environment and substantially modulates the plasmon wavelength, propagation length, and group velocity. Such active control of micrometer plasmon propagation facilitates near-unity-order modulation of nanoscale energy flow that serves as a plasmonic switch with an on-off ratio above 14. The suspended graphene plasmons possess long propagation length, high tunability, and controllable energy transmission simultaneously, opening up broad horizons for application in nano-photonic devices.
UR - https://www.scopus.com/pages/publications/85126644539
U2 - 10.1038/s41467-022-28786-8
DO - 10.1038/s41467-022-28786-8
M3 - Article
C2 - 35304465
AN - SCOPUS:85126644539
SN - 2041-1723
VL - 13
JO - Nature Communications
JF - Nature Communications
IS - 1
M1 - 1465
ER -