TY - JOUR
T1 - Frequency comb measurements for 6G terahertz nano/microphotonics and metamaterials
AU - Kang, Guseon
AU - Lee, Younggeun
AU - Kim, Jaeyoon
AU - Yang, Dongwook
AU - Nam, Han Ku
AU - Kim, Shinhyung
AU - Baek, Soojeong
AU - Yoon, Hyosang
AU - Lee, Joohyung
AU - Kim, Teun Teun
AU - Kim, Young Jin
N1 - Publisher Copyright:
© 2024 the author(s), published by De Gruyter.
PY - 2024/3/3
Y1 - 2024/3/3
N2 - Next-generation 6G communication holds the potential to revolutionize data transfer, enabling the realization of eXtended Reality (XR) with enhanced sensory experiences. To achieve this, advanced components such as high-performance intensity/phase modulators, waveguides, multiplexers, splitters, combiners, and filters operating in terahertz (THz) regime, specifically within the frequency range of 0.1–1 THz, are essential. However, existing microwave equipment and vector network analyzers designed for this frequency range suffer from limitations in resolution, stability, and accuracy when evaluating the intensity and phase responses of critical 6G THz devices. In this comprehensive review, we delve into the critical device requirements and emerging trends in next-generation 6G communication, essential performance evaluation parameters, comparisons between microwave and nano/microphotonic devices for testing, and the application of high-resolution THz sensors in 6G Internet-of-Things (IoT) scenarios. Notably, a frequency comb in the photonic regime emerges as the prime candidate for achieving precision evaluations of 6G networks and devices. Consequently, this review highlights the latest research in frequency comb measurements in the 6G THz frequency regime, with a particular emphasis on nano/microphotonic devices and metamaterials. The integration of frequency comb measurements into 6G and THz photonic devices and networks promises to accelerate the realization of high-density next-generation 6G communication.
AB - Next-generation 6G communication holds the potential to revolutionize data transfer, enabling the realization of eXtended Reality (XR) with enhanced sensory experiences. To achieve this, advanced components such as high-performance intensity/phase modulators, waveguides, multiplexers, splitters, combiners, and filters operating in terahertz (THz) regime, specifically within the frequency range of 0.1–1 THz, are essential. However, existing microwave equipment and vector network analyzers designed for this frequency range suffer from limitations in resolution, stability, and accuracy when evaluating the intensity and phase responses of critical 6G THz devices. In this comprehensive review, we delve into the critical device requirements and emerging trends in next-generation 6G communication, essential performance evaluation parameters, comparisons between microwave and nano/microphotonic devices for testing, and the application of high-resolution THz sensors in 6G Internet-of-Things (IoT) scenarios. Notably, a frequency comb in the photonic regime emerges as the prime candidate for achieving precision evaluations of 6G networks and devices. Consequently, this review highlights the latest research in frequency comb measurements in the 6G THz frequency regime, with a particular emphasis on nano/microphotonic devices and metamaterials. The integration of frequency comb measurements into 6G and THz photonic devices and networks promises to accelerate the realization of high-density next-generation 6G communication.
KW - 6G
KW - THz
KW - frequency comb
KW - metamaterials
KW - topological photonics
UR - http://www.scopus.com/inward/record.url?scp=85183961714&partnerID=8YFLogxK
U2 - 10.1515/nanoph-2023-0869
DO - 10.1515/nanoph-2023-0869
M3 - Review article
AN - SCOPUS:85183961714
SN - 2192-8614
VL - 13
SP - 983
EP - 1003
JO - Nanophotonics
JF - Nanophotonics
IS - 7
ER -