Multifunctional Graphene Metasurface for Highly Flexible Control of Microwave Absorption

Reconfigurable multifunctional electromagnetic absorbers have shown broad application prospects in effectively dealing with a series of problems caused by complex electromagnetic environments due to their dynamic reflection wave control characteristics. In this work, we experimentally propose a multifunctional absorber based on a graphene metasurface. Its absorption mode can be flexibly switched among three modes of dual band, broadband, and single band. The reflection amplitude in each absorption mode can be controlled simultaneously. The measurement results of the prepared graphene metasurface indicate that the absorption modes and amplitudes can be dynamically controlled by changing two independent sets of bias voltages applied to the patterned graphene sandwich structures. The proposed graphene metasurface achieves peak absorption rates above 99.9% in both dual-band and single-band absorption modes. Specifically, in the broadband absorption mode, the bandwidth with an absorption rate greater than 90% reaches 17.8 GHz. In addition, it also integrates many advantages, such as optical transparency, polarization-insensitivity, stability of oblique incidence angles, and conformability to the application targets. Therefore, the proposed graphene metasurface is expected to be applied in platforms with optical windows that require resistance to electromagnetic interference and avoidance of electromagnetic radiation.

Medienart:

E-Artikel

Erscheinungsjahr:

2024

Erschienen:

2024

Enthalten in:

Zur Gesamtaufnahme - volume:16

Enthalten in:

ACS applied materials & interfaces - 16(2024), 2 vom: 17. Jan., Seite 2649-2658

Sprache:

Englisch

Beteiligte Personen:

Wang, Pan [VerfasserIn]
Han, Wenlong [VerfasserIn]
Tao, Hui [VerfasserIn]
Zhang, Canran [VerfasserIn]
Xu, Yijing [VerfasserIn]
Wang, Qilong [VerfasserIn]

Links:

Volltext

Themen:

Electrically tunable
Electromagnetic absorber
Graphene
Journal Article
Metasurface
Optically transparent

Anmerkungen:

Date Revised 17.01.2024

published: Print-Electronic

Citation Status PubMed-not-MEDLINE

doi:

10.1021/acsami.3c16127

funding:

Förderinstitution / Projekttitel:

PPN (Katalog-ID):

NLM366654977