Technology & Innovation
Infleqtion and Honeywell Develop Chip-Scale Optical Cavity
Infleqtion, Honeywell Aerospace, and UCSB fabricate a chip-scale optical cavity for quantum sensors and aerospace timing systems.
Infleqtion, Honeywell Aerospace, and the University of California, Santa Barbara (UCSB) have developed a chip-scale optical cavity prototype that shrinks laser-stabilization hardware from tabletop instruments down to handheld size. The component, fabricated at Honeywell Aerospace’s photonics foundry and announced on October 6, 2026, paves the way for fieldable quantum sensors and timing systems in aerospace applications.
In a press release issued Tuesday, Infleqtion detailed the successful fabrication of the integrated optical cavity on a silicon nitride chip. The milestone leverages semiconductor-style manufacturing processes to enable mass production of compact quantum hardware, targeting precision navigation and atomic timing for both aerospace platforms and commercial infrastructure.
Optical cavities serve as critical hardware components that stabilize lasers used in quantum computers, atomic clocks, and quantum sensors. Historically, these components have been large, fragile tabletop instruments. This physical footprint has severely limited their deployment in field environments, mobile platforms, and aerospace applications where space and weight are constrained.
The new prototype utilizes silicon nitride photonic integration processes to reduce the spatial footprint of these systems. By transitioning the optical cavity to a chip-scale format, the collaboration aims to make quantum sensors viable for integration into aircraft, satellites, and remote infrastructure.
Pranav Gokhale, Chief Technology Officer at Infleqtion, stated that while quantum technology holds incredible potential, realizing that potential requires making the systems smaller, more stable, and manufacturable at scale. He described the prototype as a direct result of combining academic research, advanced fabrication capabilities, and deep quantum systems knowledge.
The foundation for the new optical cavity technology stems from Infleqtion’s January 29, 2024, acquisition of SiNoptiq Inc., a photonic technology startup founded by Dr. Daniel J. Blumenthal. Blumenthal currently serves as Distinguished Professor at UCSB and Chief Photonics Architect for Infleqtion. The design work was conducted jointly by Infleqtion’s engineering team and UCSB’s OCAQ Group, led by Blumenthal, with facilitation by the UCSB Office of Technology & Industry Alliances.
Fabrication took place at Honeywell Aerospace’s photonics foundry, utilizing silicon nitride integration processes the company has developed over the past decade. Honeywell Aerospace provides microelectronics and radiation-hardened integrated circuits for aerospace systems. By using established semiconductor-style manufacturing processes, the optical cavity can be produced at scale across existing commercial facilities rather than requiring bespoke laboratory construction.
The prototype announcement follows a period of structural and strategic expansion for Infleqtion. In 2026, the pure-play quantum technology company became a publicly listed entity on the New York Stock Exchange under the ticker INFQ. The company builds neutral-atom quantum computers, quantum sensing products, and quantum networking systems for commercial customers and US government agencies, including the Department of Defense and NASA.
Beyond hardware miniaturization, Infleqtion is expanding its software and error-correction capabilities. On September 29, 2026, the company signed a Memorandum of Understanding (MOU) with Riverlane to advance quantum error correction and fault-tolerant computing in the United Kingdom. The combined hardware and software developments target applications ranging from precision aerospace navigation to atomic timing for data centers and telecommunications networks. The transition of quantum hardware from laboratory environments to fieldable aerospace applications hinges entirely on miniaturization and ruggedization. By successfully fabricating an optical cavity on a silicon nitride chip, Infleqtion and Honeywell Aerospace are addressing one of the primary bottlenecks in quantum sensor deployment. We view the use of existing semiconductor foundry processes as particularly significant, as it shifts the production model from bespoke, low-yield manufacturing to scalable commercial fabrication. This capability will be essential for integrating quantum-enabled precision navigation and timing systems into next-generation aircraft and satellites, where size, weight, and power constraints dictate system viability.
Miniaturizing quantum hardware for aerospace
The path to chip-scale production
Commercial and strategic expansion
AirPro News analysis
Photo Credit: Infleqtion
Technology & Innovation
Airbus UpNext Completes Optimate Automated Ground Operations Campaign
Airbus UpNext concludes its three-year Optimate demonstrator, logging 500 tarmac hours testing AI-assisted gate-to-gate ground operations.
Airbus UpNext has concluded its three-year Optimate demonstrator test campaign, completing a series of trials evaluating automated gate-to-gate operations for commercial aircraft. The project tested advanced sensors and artificial intelligence to assist pilots with ground navigation at Toulouse-Blagnac Airport (TLS) and Paris-Charles de Gaulle Airport (CDG) in France.
Announced in a press release on October 8, 2026, the conclusion of the campaign marks a milestone in the manufacturer’s strategy to address anticipated airport congestion. With the global commercial aircraft fleet projected to nearly double over the next two decades, Airbus is focusing on smart automation to reduce crew workload and improve ground efficiency without removing human oversight.
The Optimate campaign utilized a three-phase testing methodology to validate its systems. Engineers began with virtual simulation before moving to ground-testing with the “Optibus,” a fully electric experimental truck fitted with a virtual replica of an Airbus A350 flight deck. The final phase involved full-scale trials on an Airbus A350-1000 test aircraft.
During the campaign, the demonstrator spent 500 hours testing on the tarmac and 14 hours in the air. Jonathan Rigaud, Airbus UpNext Optimate Director, stated the demonstrator allowed the company to evaluate, de-risk, and mature cutting-edge technologies at an accelerated pace.
“By testing early and incrementally, first digitally, then on the Optibus, and finally in the air, we were able to refine our algorithms with real-world feedback on safety and operational improvements while reducing fuel burn associated with flight testing,” Rigaud said. The technological suite tested during the Optimate campaign included multi-sensor data fusion utilizing computer vision, light detection and ranging (LIDAR), and 4D radar. To achieve centimeter-level positioning in areas where satellite navigation is compromised, the project incorporated experimental quantum sensing. The demonstrator also tested hybrid connectivity arrangements combining high-bandwidth 5G, satellite communications, and traditional radio channels to maintain data links in connectivity dead zones around heavy airport infrastructure.
The Optimate demonstrator builds upon foundational work from previous Airbus automation projects. Airbus UpNext, a wholly owned subsidiary designed to build and test flight demonstrators, has systematically advanced the manufacturer’s smart automation roadmap over the past eight years.
On June 1, 2018, Airbus launched the Autonomous Taxi, Take-Off & Landing (ATTOL) project, which laid the groundwork for future automation research by proving aircraft could navigate using image recognition. In November 2020, the company launched the UpNext DragonFly demonstrator project. DragonFly explored automated emergency operations and taxi assistance, verifying operational relevance and scaling data processing capabilities.
The Optimate campaign, which began its testing phase in 2023, advanced this research by testing end-to-end smart automation across taxiing, pilot assistance, dynamic trajectory protection, and digital communication systems.
The underlying driver for the Optimate project is the projected growth of the global aviation sector. Industry forecasts indicate the global commercial aircraft fleet will nearly double over the next 20 years. Because physical airport infrastructure, including runways, taxiways, and gate capacities, cannot easily expand at the same rate, ground congestion is expected to increase significantly. Airbus maintains that its automation strategy remains pilot-centric. The technologies evaluated during the Optimate campaign are designed to manage complex ground variables and reduce crew workload, rather than replacing human pilots on the flight deck.
Airbus has not announced a specific deployment timeline or entry-into-service date for the Optimate technologies. The company noted that the operational lessons learned from the three-year campaign will feed into a variety of future Airbus engineering programs.
The conclusion of the Optimate campaign highlights a pragmatic shift in aerospace automation research. While early industry discussions often centered on fully autonomous flight, Airbus is directing its immediate automation resources toward the ground. By focusing on taxiing and gate operations, the manufacturer is targeting the most complex, variable-heavy phases of a commercial flight profile. We view this pilot-centric approach as a necessary step to secure regulatory buy-in, as it frames artificial intelligence as a workload-reduction tool rather than a crew replacement. The use of quantum sensing for centimeter-level positioning also indicates that manufacturers are actively preparing for environments where traditional GPS and satellite navigation are degraded or jammed, a growing operational concern in commercial aviation.
Phased testing and sensor integration
The evolution of Airbus automation research
Preparing for fleet expansion
AirPro News analysis
Photo Credit: Airbus
Technology & Innovation
Woodward to Supply Actuation System for Airbus Folding Wing
Woodward Inc. will provide the actuation system for Airbus’ Folding Wing demonstrator under the Wing of Tomorrow programme.
Woodward Inc. (WWD) will supply the complete actuation system for Airbus‘ ground-based Folding Wing demonstrator, a critical component in the European manufacturer’s push to develop longer, more fuel-efficient wings for next-generation narrowbody aircraft. The October 7, 2026, announcement advances Airbus’ Wing of Tomorrow research programme, which aims to balance aerodynamic gains with existing airport gate constraints.
In a press release issued by Woodward, the Colorado-based aerospace supplier confirmed it will provide the power delivery unit and high-power hinge actuator for the demonstrator. The system will undergo testing at Airbus facilities in Bremen, Germany, and Bristol, U.K., as the companies conduct trade studies to determine whether hydraulic or electric power best suits the folding mechanism.
The ground-based demonstrator focuses on the mechanical and structural viability of folding and locking wingtips during taxiing operations. According to Woodward, meeting the performance targets set by Airbus requires a larger folding portion of the wing than is currently utilized on commercial aircraft designs.
To achieve this, Woodward is supplying a comprehensive actuation package. The system centers on a high-power hinge actuator and a power delivery unit, alongside several supporting components. A final decision on the power source remains pending. Woodward and Airbus are currently conducting trade studies to evaluate the respective benefits of hydraulic and electromechanical power for the system.
“We have broad capabilities in both hydraulic and electromechanical technologies to contribute to the future of flight,” said Jon Geisheimer, Vice President and General Manager of Electromechanical Systems and Electronics at Woodward. “This provides options for customers as we work closely with them to develop the solution that best fits the application.” The Woodward contract supports Airbus’ broader Wing of Tomorrow initiative, a transnational research and technology programme designed to maximize aerodynamic efficiency for future single-aisle aircraft. As manufacturers look toward the 2030s for their next-generation narrowbody designs, fuel efficiency remains the primary driver. Longer, high-aspect-ratio wings reduce drag and lower fuel burn, but they present a significant infrastructure challenge: they exceed standard airport gate dimensions.
Folding wingtips offer a solution to this physical constraint, allowing airlines to operate wider wingspans in flight while folding the tips on the ground to fit existing gates. While Boeing has implemented folding wingtips on its widebody 777X, the technology has not yet entered service on narrowbody commercial aircraft.
On July 21, 2026, at the Farnborough International Airshow, Airbus officially launched the flight-test phase of the Wing of Tomorrow campaign. The manufacturer announced plans to fit wing extensions measuring approximately 4 to 5 meters onto an Airbus A321neo test aircraft. The three-year flight test campaign is expected to begin in the second half of 2027, according to reporting by The Guardian.
Sue Partridge, Head of Wing of Tomorrow at Airbus, highlighted the programme’s scope during the July announcement. “For more than 50 years, Airbus has spearheaded aviation innovation, continually pushing the boundaries of what’s possible to deliver more efficient aircraft for future generations,” Partridge stated.
The selection of Woodward for the ground-based demonstrator highlights a critical engineering hurdle for next-generation narrowbodies: actuation weight and reliability. While the aerodynamic benefits of high-aspect-ratio wings are well established, the mechanical penalty of the folding hinge, locking mechanisms, and actuation systems can offset those fuel savings if not optimized. The ongoing trade study between hydraulic and electric power is particularly notable. A shift toward electromechanical actuation would align with the broader industry trend toward more-electric aircraft architectures, potentially reducing maintenance complexity and weight compared to traditional hydraulic systems. We view the outcome of this trade study as a strong indicator of the systems architecture Airbus may favor for its eventual A320-family replacement.
Engineering the folding mechanism
The Wing of Tomorrow programme context
AirPro News analysis
Photo Credit: Woodward Inc.
Technology & Innovation
SkyDrive Studies 146 Osaka Rooftops for eVTOL Vertiports
SkyDrive targets 146 Osaka rooftop emergency helipads for eVTOL vertiport conversion, aiming for 2028 commercial service.
Japanese electric vertical takeoff and landing (eVTOL) developer SkyDrive Inc. has initiated a feasibility study to convert 146 existing rooftop emergency landing sites in Osaka City into commercial vertiports, aiming to bypass the high costs and space constraints of ground-up infrastructure in dense urban centers.
Announced in an October 1, 2026, press release, the initiative brings together local government entities and corporate partners, including Chodai Co. Ltd., Kansai Electric Power Co. Inc., the Organization of Airport Facilitation, and Osaka Metro. The consortium will evaluate structural and regulatory hurdles ahead of a targeted 2028 commercial service launch in Osaka Prefecture and Osaka City.
Finding suitable locations for new takeoff and landing sites remains a primary obstacle for urban air mobility operators. In Osaka City, local fire safety regulations require buildings over 100 meters tall to feature rooftop emergency landing sites, which are marked with an “H” symbol. SkyDrive identified 146 such locations that already possess reinforced floor loading, fire suppression systems, and lighting.
Currently, Japanese regulations restrict the use of these helipads exclusively to emergency disaster relief operations. The newly launched study aims to determine what modifications and regulatory exemptions would be required from the Japan Civil Aviation Bureau and the Osaka Municipal Fire Department to open these sites to daily commercial eVTOL traffic.
In its official statement, SkyDrive noted the strategic divergence from other industry players regarding infrastructure use.
“Unlike the global eVTOL market’s primary focus on inter-city transport between major airports and suburban heliports, SkyDrive aims to make daily intra-city travel accessible using compact, quiet, and agile aircraft.” The feasibility study will conduct a comprehensive review of the physical and operational requirements for rooftop vertiports. Engineers will assess floor load capacities to ensure the structures can withstand repeated aircraft landings rather than occasional emergency use.
The survey will also map out passenger movement flows during flight diversions and establish logistics for transporting aircraft off the roof in cases of mechanical failure. The consortium must evaluate airspace compliance, wind patterns at high altitudes, and noise impacts on surrounding urban environments to address regulatory and engineering barriers.
SkyDrive has tailored its aircraft design to align with these infrastructure constraints. In September 2026, the manufacturer published its updated aircraft design concept, which emphasizes low disk loading. This design choice is intended to ensure stable hover capabilities and safe vertical landings directly onto constrained rooftop vertiports, even in single-failure scenarios.
The Osaka vertiport study is part of a broader push to establish a viable eVTOL ecosystem in Western Japan. On October 6, 2026, SkyDrive announced a parallel joint initiative with leading enterprises in the Kansai region, including MUFG Bank Ltd., to evaluate the commercial deployment and operational framework for eVTOL aircraft across the wider area. These infrastructure and operational studies run concurrently with the company’s manufacturing ramp-up under the leadership of Chief Executive Officer Tomohiro Fukuzawa. SkyDrive began production of the SKYDRIVE (Model SD-05) eVTOL in March 2024 at a facility owned by Suzuki Motor Corporation in Iwata-city, Shizuoka. The plant has a maximum annual production capacity of 100 aircraft.
The company previously conducted extensive demonstration flights at the Expo 2025 in Osaka between July 31, 2025, and August 24, 2025. Data gathered during those flights is now informing the push toward the 2028 commercial launch target shared by SkyDrive and Osaka Metro.
We view the Osaka rooftop study as a highly pragmatic approach to the vertiport real estate bottleneck. Ground-up vertiport construction in tier-one cities requires prohibitive capital expenditure and complex zoning approvals. By targeting existing emergency helipads, SkyDrive is attempting to leverage sunk infrastructure costs. If the consortium can successfully lobby regulators to permit dual-use of these sites, it would create a scalable, low-capex model for intra-city eVTOL networks that other municipalities could replicate.
Evaluating urban infrastructure
Regulatory and engineering hurdles
SkyDrive production and operational timeline
AirPro News analysis
Photo Credit: SkyDrive Inc.
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