Photonic crystal lattice distortion produces pseudogravity effects

Oct. 30, 2023
Researchers achieve photonic crystal in-plane beam steering within the terahertz range—which has wide-ranging implications for the realms of optics, materials science, and 6G communications.

A group of researchers led by Kyoko Kitamura, a professor of electronic science and engineering at Tohoku University in Japan, are manipulating photonic crystals’ light behavior as if under the influence of gravity in space: pseudogravity.

Photonic crystals can be built by periodically arranging two or more different materials with varying abilities to interact with and slow light down in a repeating pattern. These properties allow researchers to manipulate and control light’s behavior—to essentially act as traffic controllers.

“Light within photonic crystals express Bloch states—a type of wave function for a particle within a periodically repeating environment,” explains Kitamura. “And lattice distortion or pseudogravity effects are defined by adiabatic changes—no heat enters or leaves the system—within the lattice constant or shape.”

Gravity and gravitational fields “are the result of a space-time distortion within the vicinity of massive objects, according to Einstein’s theory of general relativity,” Kitamura adds. “Such space-time distortion may also be observable in the adiabatic change of Bloch states.”

Pseudogravity

Albert Einstein’s 1915 theory of general relativity states that the trajectory of electromagnetic waves—including light and terahertz electromagnetic waves—can be deflected by gravitational fields. What we perceive as the force of gravity arises from the curvature of space and time.

More recently, researchers theoretically predicted it should be possible to create pseudogravity by deforming photonic crystals’ lower normalized frequency region.

So Kitamura and colleagues modified photonic crystals by introducing lattice distortion: a gradual deformation of the regular spacing of elements to disrupt the grid-like pattern of photonic crystals (see video). To do this, they designed a silicon photonic crystal with a distorted lattice to manipulate the photonic band structure of the crystals that produces a curved-beam trajectory in-medium—akin to a light ray passing by a massive celestial body like a black hole (which warps the fabric of space-time and manifests as gravity).

They put it to the test by hitting their silicon photonic crystal (which has a primal lattice constant of 200 µm) with terahertz waves. And it successfully deflected these waves—revealing that pseudogravity caused by lattice distortion acts in accordance of general relativity.

“Much like gravity bends the trajectory of objects, we came up with a means to bend light within certain materials,” Kitamura says. “This phenomenon has implications for the fields of photon and electron systems in physics.”

Kitamura is working with Masayuki Fujita, an associate professor at Osaka University known for his work with photonic crystals within the terahertz electromagnetic frequency. “If we use this frequency region, we can make micrometer-scale structures,” Kitamura says.

In-plane beam steering within the terahertz range may be “harnessed for 6G communications,” says Fujita.  “Our findings show photonic crystals could harness gravitational effects and open new pathways within the field of gravitational physics.”

The group is now “trying to demonstrate more varieties of beam steering via designing lattice distortion,” says Kitamura.

FURTHER READING

K. Nanjyo et al., Phys. Rev. A, 108, 033522 (Sept. 28, 2023); https://doi.org/10.1103/physreva.108.033522.

About the Author

Sally Cole Johnson | Senior Technical Editor

Sally Cole Johnson, Laser Focus World’s senior technical editor, is a science and technology journalist who specializes in physics and semiconductors. She wrote for the American Institute of Physics for more than 15 years, complexity for the Santa Fe Institute, and theoretical physics and neuroscience for the Kavli Foundation.

Sponsored Recommendations

Melles Griot® XPLAN™ CCG Lens Series

March 19, 2024
IDEX Health & Science sets a new standard with our Melles Griot® XPLAN™ CCG Lens Series fluorescence microscope imaging systems. Access superior-quality optics with off-the-shelf...

Spatial Biology

March 19, 2024
Spatial Biology refers to the field that integrates spatial information into biological research, allowing for the study of biological systems in their native spatial context....

Fluorescent Protein Optical Imaging Considerations

March 19, 2024
What factors should you consider when your incorporate fluorescent proteins in an optical imaging application? Learn more.

Custom-Engineered Optical Solutions for Your Application

March 19, 2024
We combine advanced optical design and manufacturing technology, with decades of experience in critical applications, to take you from first designs to ongoing marketplace success...

Voice your opinion!

To join the conversation, and become an exclusive member of Laser Focus World, create an account today!