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Chip-Scale Light Tech for Faster AI

Researchers at Trinity College Dublin have created an innovative light-based technology on a miniature chip that could significantly improve the speed and efficiency of data centers powering cloud computing, artificial intelligence, and global internet services. Their findings, recently published in Nature Communications, were achieved in collaboration with University of Bath and École Polytechnique Fédérale de Lausanne.

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Researchers at Trinity College Dublin have created an innovative light-based technology on a miniature chip that could significantly improve the speed and efficiency of data centers powering cloud computing, artificial intelligence, and global internet services. Their findings, recently published in Nature Communications, were achieved in collaboration with University of Bath and École Polytechnique Fédérale de Lausanne.
The team introduced a novel method for producing highly stable light signals using tiny ring-shaped structures known as microresonators. These signals create what scientists call optical frequency combs—often referred to as “optical rulers” because they generate evenly spaced light frequencies that enable extremely precise measurements.
A key breakthrough in the study was the creation of a new form of light pulse called a hyperparametric soliton. This stable pulse allows the frequency comb to produce multiple colors of light from a single laser source, representing a major step forward in optical technology.
This capability is particularly valuable for high-speed optical communication, which is essential for transferring data within modern data centers. The researchers successfully demonstrated their system in a wavelength range commonly used for fast data links inside large-scale computing facilities—an area growing rapidly due to increasing demand driven by AI.

Potential Impact of Research

Data centers consume vast amounts of electricity to support digital services, and their energy demands are rising quickly, largely due to the expansion of AI technologies. According to Ireland’s Central Statistics Office, data centers accounted for 22% of the country’s total electricity usage in 2024—surpassing the 18% used by all urban households combined. This figure also represented a 10% increase from the previous year.
With this growing energy demand, technologies that improve efficiency could play a critical role in reducing power consumption and helping meet global carbon reduction goals.
John Donegan, a physics professor at Trinity College Dublin and researcher at CONNECT, expressed enthusiasm about the breakthrough. He noted that the newly developed optical source could be highly valuable for both optical communications and precision measurement applications.
He also highlighted the importance of collaboration, noting that the project brought together theoretical expertise from the University of Bath and advanced microresonator fabrication from Switzerland. Additionally, the work benefited from cooperation with Pilot Photonics, a Dublin City University spin-out focused on developing advanced laser and optical comb technologies.
Donegan emphasized that this achievement marks just the beginning, with strong potential for further development in the coming years.

Toward the Next Generation of Optical Networks

Modern fiber-optic systems transmit large volumes of data by sending multiple wavelengths of light through a single fiber—a method known as wavelength-division multiplexing (WDM).
Optical frequency combs offer a more efficient alternative by generating many wavelengths from a single light source, potentially replacing multiple individual lasers. This could simplify system design while enhancing stability and performance.
As a result, comb-based technologies are expected to become key components in future data center networks and next-generation high-capacity internet infrastructure.

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