Technology
Highly tunable electro-optic isolator achieves one-way light flow on photonic chips
Key Points
Highly tunable electro-optic isolator achieves one-way light flow on photonic chips Sadie Harley Scientific Editor Robert Egan Senior Editor Integrated photonic devices—tiny circuits that use light instead of electrons—are becoming increasingly important for scalable photonics technologies and high-bandwidth communications. They are particularly valuable for managing low-power, light-based data transfer inside data centers, which are needed for artificial intelligence, cloud computing and...
Highly tunable electro-optic isolator achieves one-way light flow on photonic chips
Sadie Harley
Scientific Editor
Robert Egan
Senior Editor
Integrated photonic devices—tiny circuits that use light instead of electrons—are becoming increasingly important for scalable photonics technologies and high-bandwidth communications. They are particularly valuable for managing low-power, light-based data transfer inside data centers, which are needed for artificial intelligence, cloud computing and high-performance signal processing.
A major challenge for the field is developing approaches that force light to propagate in only one direction within a photonic circuit, since this can improve robustness to manufacturing defects, protect laser sources and impart greater stability to optical signals within the system.
Researchers at the University of Illinois Urbana-Champaign's Grainger College of Engineering have developed a photonic integrated circuit that functions as a linear optical isolator, allowing light to pass in only one direction with extremely low loss while blocking almost all light propagating in the opposite direction. The results are published in Nature Communications.
Their design is inspired by an atomic physics phenomenon called Autler-Townes splitting, which they emulate within the photonic circuit using electro-optic modulation.
Why magnetic isolators fall short
"Currently, the best commercial optical isolators are built using magneto-optic materials," said project lead Gaurav Bahl, a professor of mechanical science and engineering at Illinois Grainger Engineering.
"This approach is okay for relatively large-scale photonic systems such as optical fiber networks, but it cannot be used for integrated photonics. Magnetic and magneto-optic materials are not suitable for processing in foundry facilities. These materials also tend to have high optical loss, and their useful properties have a strong wavelength dependence.
"However, as we continue to scale up our data centers, there is an increasing need for compact, low-power optical signal routing. And so, chip-scale integrated isolator devices that don't use magnetic materials are becoming increasingly important."
From sound waves to tuning
In prior work, Bahl's research group developed an "acousto-optic" isolator that emulated Autler-Townes splitting with sound waves, resulting in broken symmetry for light propagation based on its directionality. However, their acousto-optic devices face technical challenges: they are very difficult to fine-tune after fabrication, not every device works, and the operating wavelength cannot be easily tuned to adapt to the rest of the photonic circuit.
The new "electro-optic" design uses an electrically tunable material called lithium niobate, with no sound waves involved, circumventing the challenges with the earlier designs. The approach is agnostic to the laser wavelength and can be adapted to suit many different applications. For the present study, the device was designed for the telecom band, which is a standard wavelength range used in many optical fiber communication systems.
Since nothing in this device needs to move mechanically, a protective cladding layer can also be added to help protect the device from the environment. This option was not available with the acousto-optic design.
Performance close to commercial devices
A good figure of merit for an optical isolator is the ratio between propagation contrast and forward transparency. The new on-chip device exhibited a figure of merit of nearly 2,000 (about 33 decibels) between forward and backward transmission, with extremely low forward loss, bringing it on par with commercial off-chip magnetic isolators.
In addition, the researchers showed that the electro-optic isolator can be tuned over many terahertz—that is, it has many thousands of times more tunability than the previous acousto-optic version. As a result, the isolation function can be adjusted on demand to suit the wavelength used by the rest of the photonic system.
"As a follow-up to this work, we are working on a broadband 'electro-optic' isolator that will exhibit nice properties over an extremely wide wavelength range, eliminating the need for tuning," Bahl said. "Technical innovations such as this isolator can play a key role in solving the big challenges facing nationally critical technologies in AI and computing."
Publication details
Gwan In Kim et al, An integrated multi-THz tunable linear isolator based on electro-optic non-reciprocal strong coupling, Nature Communications (2026). DOI: 10.1038/s41467-026-75451-5
Journal information: Nature Communications