Quantum networks may one day connect computers, sensors, memories, and clocks that operate in completely different parts of the light spectrum. Yet one of the field’s most stubborn engineering problems is that these quantum systems often “speak” incompatible optical languages. A trapped ion or quantum memory may interact most effectively with ultraviolet or visible light, while information traveling through conventional fiber-optic infrastructure is typically carried at telecommunications wavelengths near 1550 nanometers. A new modeling study suggests that gas-filled hollow-core fibers could help bridge this gap while preserving the delicate phase information that makes quantum communication possible.
Published in Advanced Photonics Nexus, the study examines a wavelength-conversion technique called four-wave mixing, or FWM. The process allows light at one frequency to be converted into another by passing through a nonlinear medium and interacting with a strong intermediary laser field. Unlike ordinary frequency shifting, which may simply change a light wave’s color, quantum frequency conversion must preserve the structure of the original signal. Any uncontrolled distortion of its phase can damage the quantum information encoded in the light, potentially destroying coherence or weakening correlations between entangled particles.
The research team, involving scientists from UCLA, SLAC National Accelerator Laboratory, the University of Rochester, and the University of Ottawa, investigated whether FWM could perform this conversion with high phase fidelity. Their proposed platform is a hollow-core capillary fiber filled with xenon gas. Instead of traveling through solid glass, the optical fields are guided through the gas-filled central region of the waveguide. This geometry can reduce unwanted interaction with the fiber material while providing a controlled environment in which intense light fields drive nonlinear optical processes.
In the simulated system, an input pulse enters the hollow waveguide together with a powerful intermediary laser pulse. The fields interact through the nonlinear response of xenon, generating a new optical frequency. The researchers considered three conversion pathways with direct relevance to future quantum technologies. One converted 1030-nanometer infrared light into ultraviolet light at 343 nanometers. A second converted telecommunications-band light at 1550 nanometers into ultraviolet light at 308 nanometers. The third shifted 1550-nanometer light into visible light at 516 nanometers.
These wavelength connections could become important wherever quantum devices must exchange information despite operating at different optical frequencies. Fiber networks favor the 1550-nanometer telecommunications band because losses are relatively low over long distances. By contrast, optical clocks, trapped-ion processors, Rydberg-atom systems, and some rare-earth quantum memories may require ultraviolet or visible wavelengths. A reliable converter could act as a photonic translator, allowing quantum states produced by one platform to be transmitted to another without forcing every component of a future network to operate at the same wavelength.
The study focused on phase rather than conversion efficiency alone. Phase describes the position of a wave’s oscillation within its cycle and determines how different parts of a light field interfere with one another. In quantum optics, phase can carry information about the state of a photon and can influence interference, squeezing, superposition, and entanglement. To test how faithfully FWM transferred this information, the researchers modeled input pulses with several phase structures, including linear phase profiles and two kinds of quadratic phase modulation. They then compared the input and converted output phases using correlation measures.
The results were strikingly strong under carefully selected conditions. In many simulations, the correlation between the input and output phase profiles exceeded 0.95 and, in favorable regimes, rose above 0.99. The best performance generally occurred when the intermediary laser pulse had relatively low energy and a narrow bandwidth. Under these conditions, the gas-filled waveguide generated a new wavelength while introducing only limited phase distortion. Such high correlations indicate that the conversion process may preserve the temporal and spectral structure required for coherent quantum information transfer.
The simulations also revealed that not all conversion pathways are equally forgiving. The 1550-to-516-nanometer telecommunications-to-visible process showed particularly robust behavior, maintaining high phase correlations across a broad range of tested parameters. The 1550-to-308-nanometer telecommunications-to-ultraviolet conversion was more sensitive to operating conditions, especially as pulse energy and bandwidth increased. The difference arises from the complex interplay between nonlinear propagation, dispersion, pulse reshaping, and the phase-matching conditions required to generate the new frequency.
Increasing the intermediary laser’s energy generally improved conversion efficiency, but it also intensified the nonlinear effects that could undermine phase fidelity. Stronger fields can broaden the optical spectrum, alter the temporal profile of the pulse, and introduce additional phase curvature as the light propagates through the xenon-filled core. The simulations therefore expose a central challenge in quantum wavelength conversion: the operating point that produces the most converted light may not be the one that preserves quantum information most accurately. A useful quantum transducer must balance brightness with coherence.
The efficiency results illustrate that tradeoff. Under linear phase conditions, the infrared-to-ultraviolet pathway reached a simulated efficiency of up to 28 percent. The telecommunications-to-ultraviolet pathway achieved as much as 8.4 percent, while the telecommunications-to-visible conversion reached approximately 10.8 percent. Higher pulse energies and broader bandwidths generally increased the amount of generated light, but often reduced the quality of phase transfer. This means that practical devices may need active control of pulse energy, bandwidth, gas pressure, fiber length, and dispersion to operate within a narrow region where efficiency and fidelity remain compatible.
Although the work remains theoretical and does not yet demonstrate conversion of an actual quantum state, it provides a detailed map of the conditions under which phase-coherent frequency translation may be possible. The next step will be experimental testing with nonclassical light, including single photons, squeezed states, and entangled photons. Researchers will need to determine whether the high classical phase correlations predicted by the simulations survive the added sensitivity of quantum measurements, where loss, noise, and even small amounts of spectral distortion can have major consequences.
If those experiments confirm the predictions, xenon-filled hollow-core fibers could become an important interface technology for modular quantum networks. Rather than designing one universal quantum platform, engineers could connect specialized systems through carefully tuned optical converters. A trapped-ion processor might communicate with a telecom fiber, a quantum memory could exchange states with a visible-light sensor, and an optical clock could share timing information with distant nodes. The study’s central message is that changing a photon’s wavelength is only half the problem; preserving its phase may be what makes the connection genuinely quantum.
Subject of Research: Phase-coherent quantum wavelength conversion using four-wave mixing in xenon-filled hollow-core fibers
Article Title: Tunable phase-coherent FWM for quantum wavelength interconnects
News Publication Date: 19-Aug-2026
Web References: Advanced Photonics Nexus article
References: H. Zhang et al., “Tunable phase-coherent FWM for quantum wavelength interconnects,” Advanced Photonics Nexus 5(6), 066002 (2026). DOI: 10.1117/1.APN.5.6.066002
Image Credits: H. Zhang et al.
Keywords
Quantum optics, four-wave mixing, quantum networks, wavelength conversion, hollow-core fibers, phase coherence, quantum communication, nonlinear optics, ultraviolet light, telecommunications wavelengths
Tags: advanced photonics researchentangled photon preservationfiber-optic quantum infrastructurefour-wave mixing in quantum communicationhollow-core fiber opticsnonlinear optical mediaoptical frequency translationphotonic quantum networkspreserving quantum coherencequantum information transferQuantum wavelength conversionultraviolet to infrared light conversion


