Graphene Terahertz Devices for Sensing and Communication

Author:

Samaha Anna‐Christina1,Doumani Jacques23ORCID,Kritzell T. Elijah23,Xu Hongjing4ORCID,Baydin Andrey25,Ajayan Pulickel M.56,Tahchi Mario El1,Kono Junichiro24567ORCID

Affiliation:

1. Laboratory of Biomaterials and Intelligent Materials Department of Physics Faculty of Sciences 2 Lebanese University Jdeidet 90656 Lebanon

2. Department of Electrical and Computer Engineering Rice University 6100 Main Street Houston TX 77005 USA

3. Applied Physics Graduate Program Smalley–Curl Institute Rice University 6100 Main Street Houston TX 77005 USA

4. Department of Physics and Astronomy Rice University 6100 Main Street Houston TX 77005 USA

5. Smalley–Curl Institute Rice University 6100 Main Street Houston TX 77005 USA

6. Department of Materials Science and NanoEngineering Rice University 6100 Main Street Houston TX 77005 USA

7. Carbon Hub Rice University 6100 Main Street Houston TX 77005 USA

Abstract

AbstractGraphene‐based terahertz (THz) devices have emerged as promising platforms for a variety of applications, leveraging graphene's unique optoelectronic properties. This review explores recent advancements in utilizing graphene in THz technology, focusing on two main aspects: THz molecular sensing and THz wave modulation. In molecular sensing, the environment‐sensitive THz transmission and emission properties of graphene are utilized for enabling molecular adsorption detection and biomolecular sensing. This capability holds significant potential, from the detection of pesticides to DNA at high sensitivity and selectivity. In THz wave modulation, crucial for next‐generation wireless communication systems, graphene demonstrates remarkable potential in absorption modulation when gated. Novel device structures, spectroscopic systems, and metasurface architectures have enabled enhanced absorption and wave modulation. Furthermore, techniques such as spatial phase modulation and polarization manipulation have been explored. From sensing to communication, graphene‐based THz devices present a wide array of opportunities for future research and development. Finally, advancements in sensing techniques not only enhance biomolecular analysis but also contribute to optimizing graphene's properties for communication by enabling efficient modulation of electromagnetic waves. Conversely, developments in communication strategies inform and enhance sensing capabilities, establishing a mutually beneficial relationship.

Funder

Welch Foundation

U.S. Air Force

Chan Zuckerberg Initiative

Publisher

Wiley

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