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Institute of Post-LED Photonics, Tokushima University


Photonic wireless transmission reaches 112 Gbps at 560 GHz using soliton microcombs

Researchers developed a microcomb-driven terahertz wireless communication system that surpasses conventional limits by achieving 112 Gbps data rates in the 560 GHz band. This breakthrough uses high-frequency stability and low phase noise of microcombs to generate a low-noise terahertz carrier.

SourceInstitute of Post-LED Photonics, Tokushima University·JournalCommunications Engineering·TypeExperimental study·DateMay 18, 2026

Successful optical biosensing using dual optical combs: High sensitivity and rapid detection of biomolecules with promising prospects

Dual optical comb technology enables high-sensitivity and rapid biomolecule detection, leveraging the connection between optical and electrical frequency signals. The approach combines the strengths of optical and electrical frequency measurement methods, offering enhanced precision and convenience in biosensing applications.

SourceInstitute of Post-LED Photonics, Tokushima University·JournalScientific Reports·TypeExperimental study·DateSep 26, 2023

Successful terahertz wireless communication using a micro-resonator soliton comb: Expectations for next-generation mobile communications based on photonic technology

Researchers have successfully demonstrated terahertz wireless communication using a micro-resonator soliton comb, which can potentially overcome technical limitations in current wireless electronics and enable seamless connections between optical and wireless communication systems. The study achieved data transmission rates of up to 2 ...

SourceInstitute of Post-LED Photonics, Tokushima University·JournalOptics Continuum·TypeExperimental study·DateMay 24, 2023

Towards stable, sustained Raman imaging of large samples at the nanoscale

A research team from Japan has developed a stable TERS system that enables characterization of defect analysis in large-sized WS2 layers at high pixel resolution. The team successfully imaged nanoscale defects over a period of 6 hours in a micrometer-sized WS2 film without significant signal loss.

SourceInstitute of Post-LED Photonics, Tokushima University·JournalScience Advances·TypeExperimental study·DateJul 15, 2022