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Engineers shrink powerful terahertz systems onto a single semiconductor chip

Engineers shrink powerful terahertz systems onto a single semiconductor chip
Concept of a single-chip terahertz phased array transceiver based on a QW PIN PIC process for adaptive hyperspectral remote sensing and communication. Credit: Nature Communications (2026). DOI: 10.1038/s41467-026-73080-6

High-frequency waves classified as terahertz occupy a relatively underused region of the electromagnetic spectrum between infrared light and microwaves. Researchers have long recognized their unique potential for applications including ultrafast wireless communication, security screening, remote sensing and medical imaging.

High-frequency waves classified as terahertz occupy a relatively underused region of the electromagnetic spectrum between infrared light and microwaves. Researchers have long recognized their unique potential for applications including ultrafast wireless communication, security screening, remote sensing and medical imaging.

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As technologies push toward higher operating frequencies and data rates, photonics-based terahertz systems, which use light at high speed to generate and process terahertz signals, have emerged as a promising alternative to conventional electronic technologies because of their superior bandwidth and power efficiency. However, today's terahertz optoelectronic systems, which are electronic systems that control light, remain bulky, complex and difficult to scale for widespread use. They typically rely on multiple separate components—including lasers, amplifiers, modulators, sources and detectors—that must be individually made, aligned and interconnected, limiting their use outside specialized laboratory settings.

Engineers shrink powerful terahertz systems onto a single semiconductor chip
A chip-scale terahertz source leveraging gain-enhanced interband photomixing for high-efficiency terahertz signal generation. Credit: Terahertz Electronics Lab/UCLA

Now, a UCLA–led research team has demonstrated a way to integrate these functions onto a single semiconductor chip compatible with modern photonic technologies. The breakthrough, published in Nature Communications, paves the way for compact, scalable terahertz systems for next-generation communication, imaging and sensing applications.

By adapting terahertz generation and detection to be compatible with photonic integrated circuits, researchers from the UCLA Samueli School of Engineering demonstrated a path toward shrinking laboratory-scale terahertz systems into compact, mass-producible chips—much like electronic integrated circuits transformed computers from refrigerator-sized machines into modern microprocessors.

"Terahertz optoelectronic systems have been bulky, expensive, power-hungry and difficult to scale for widespread use," said study leader Mona Jarrahi, a professor of electrical and computer engineering and holder of UCLA Samueli's Northrop Grumman Chair in Electrical Engineering. "By demonstrating that many of these functions can be integrated onto a single chip using proven industry-standard fabrication platforms, our study opens the door to practical, scalable terahertz technologies for real-world applications."

Earlier approaches to single-chip optoelectronic terahertz systems primarily relied on specialized materials and fabrication techniques incompatible with standard photonic chip technology.

The team's breakthrough focused instead on quantum well semiconductor structures—extremely thin layers of material engineered to control light—tailored to simultaneously generate, detect, modulate and amplify terahertz signals on a shared chip platform.

Quantum wells are already widely used in photonic integrated circuits. The researchers' key innovation was demonstrating that these structures could also support terahertz signal generation and detection through a process called gain-enhanced interband photomixing, in which two laser beams combine to generate signals at a desired wavelength.

Using quantum well substrates in photonic integrated circuits, the team demonstrated highly efficient terahertz generation and highly sensitive terahertz detection relative to existing photomixer-based, or light interference-based, terahertz technologies.

More information: Yifan Zhao et al, Terahertz generation and detection through gain-enhanced interband photomixing in quantum well structures, Nature Communications (2026). DOI: 10.1038/s41467-026-73080-6

Provided by University of California, Los Angeles

This story was originally published on Tech Xplore.
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