UAV & Drones
PowerLight and Kraus Hamdani Develop Laser-Charged Drones for Infinite Flight
PowerLight Technologies and Kraus Hamdani Aerospace advance laser power beaming to wirelessly charge drones, targeting indefinite flight endurance by 2026.

This article is based on an official press release from PowerLight Technologies.
PowerLight Technologies and Kraus Hamdani Target “Infinite Flight” with Laser-Charged Drones
In a significant development for unmanned aerial systems (UAS), PowerLight Technologies announced on December 16, 2025, that it has successfully completed subsystem testing for a new laser power beaming system. Developed under the PTROL-UAS (Power TRansmitted Over Laser to UAS) program and sponsored by United States Central Command (CENTCOM), the technology is designed to wirelessly charge drones while they remain airborne.
According to the company’s announcement, the system is now transitioning from component development to full system integration. The next phase involves flight testing scheduled for early 2026, utilizing the Kraus Hamdani Aerospace K1000ULE (Ultra Long Endurance) drone as the primary test platform. The ultimate goal of the collaboration is to achieve “infinite flight” capabilities, effectively removing the endurance limitations imposed by traditional onboard battery capacity.
Wireless Power at Altitude
The core of the announcement centers on PowerLight’s proprietary power beaming technology, which functions as a “wireless power line” through the air. The system comprises two primary hardware elements, a ground-based transmitter and an airborne receiver.
The press release details that the ground transmitter is a mobile, autonomous unit capable of delivering kilowatt-class power over distances spanning kilometers. It utilizes active optical tracking to maintain a precise lock on the moving drone. To ensure safety in mixed-use airspace, the system features a multi-layer safety architecture that instantly shuts off the beam if the lock is lost or an obstruction is detected. The company states that the technology has been validated for transmission to altitudes up to 5,000 feet.
On the receiving end, the drone is equipped with a lightweight module weighing approximately six pounds. This receiver utilizes specialized laser power converters to transform the invisible laser light back into electricity, recharging the drone’s batteries during flight. Additionally, the system includes an embedded control module that handles real-time telemetry and a bi-directional optical data link.
“This is much more than point-to-point power transfer… We are building an intelligent mesh energy network capability. Our transmitter communicates with the UAS, tracks its velocity and vector, and delivers energy exactly where it’s needed.”
, Tom Nugent, CTO of PowerLight Technologies
The K1000ULE Integration
To demonstrate the system’s viability, PowerLight has partnered with Kraus Hamdani Aerospace. The K1000ULE is a fully autonomous, solar-electric UAS already utilized by the US Navy and Army for Intelligence, Surveillance, and Reconnaissance (ISR) missions. While the K1000ULE already boasts significant endurance, capable of flying for over 24 hours continuously on solar and battery power, the addition of laser charging aims to extend this indefinitely.
Fatema Hamdani, CEO of Kraus Hamdani Aerospace, emphasized the strategic advantage of this integration in the company statement:
“A platform that doesn’t need to land to refuel or recharge is one that never blinks. Integrating PowerLight’s laser power beaming adds a new level of persistence, reshaping the operational reality of theater-wide missions.”
Strategic Implications and Future Testing
The “battery problem” remains a primary logistical hurdle for electric military drones, which typically require frequent landings to swap batteries or recharge. This creates coverage gaps in surveillance and increases the logistical footprint required to support drone operations. By enabling mid-air recharging, the PTROL-UAS program aims to close these gaps, allowing for persistent “eyes in the sky” and continuous communication relays in contested environments.
AirPro News Analysis
While high-energy lasers in defense are frequently associated with counter-UAS (C-UAS) weapons designed to destroy targets, PowerLight’s application represents a distinct divergence in directed energy strategy. Rather than delivering destructive heat, these systems must deliver stable, continuous energy transfer without damaging the receiving airframe. If successful, this technology could fundamentally alter military logistics. By reducing the need for forward-deployed fuel and battery stockpiles, commanders could maintain persistent aerial coverage with a significantly smaller logistical tail. Furthermore, the concept aligns with broader defense initiatives like DARPA’s POWER program, which envisions a high-altitude “energy web” where aircraft beam power to one another, effectively turning drones into flying energy relays.
Next Steps
Following the successful subsystem testing reported in December 2025, the program is moving immediately into the integration phase. PowerLight Technologies has confirmed that fully integrated flight testing is slated to begin in early 2026. These tests will attempt to demonstrate the system’s ability to keep a K1000ULE airborne and charged solely via the ground-based laser transmitter, validating the concept of indefinite endurance.
Sources
Photo Credit: PowerLight Technologies
UAV & Drones
DLR Opens Counter-Drone Security Center at Cochstedt Airport
DLR launched its Technology Center for Drone Security on Aug 18, 2026, following an explosive drone incident at Leipzig/Halle Airport.

This is a developing story. Information may change as official details are released.
The German Aerospace Center (DLR), in partnership with federal security and research ministries, officially opened the Technology Center for Drone Security on August 18, 2026, establishing a dedicated facility to test counter-Drones under realistic Airports conditions.
The inauguration of the facility at Magdeburg-Cochstedt Airport (CSO) and Braunschweig follows a major security breach on August 4 and 5, 2026, when an explosive-laden drone was discovered on the tarmac at Leipzig/Halle Airport (LEJ). According to a DLR press release, the new center will bring together researchers, security authorities, and industry partners to develop technologies that protect critical infrastructure from uncrewed aircraft systems (UAS) misuse and hybrid threats.
Expanding Counter-UAS Testing Capabilities
DLR announced it will invest more than 10 million euros to expand the Technology Center, a project expected to create up to 40 new jobs. The site builds upon existing infrastructure at Magdeburg-Cochstedt Airport, which DLR acquired in 2019 to establish a dedicated drone testing environment.
Following the official launch of the National Experimental Test Center for Unmanned Aircraft Systems in 2021, DLR resumed full operations at the airport in 2022. Since 2021, facility utilization has increased by approximately 20 percent annually. In 2025, the site recorded over 200 days of use, with external customers accounting for about half of the operational activity.
Federal Minister of the Interior Alexander Dobrindt emphasized the operational value of the location. He stated that researching and testing counter-drone technology directly at an active airport addresses environments where the threat situation is most sensitive.
Heightened Security Context Following Leipzig/Halle Incident
The opening of the Cochstedt facility aligns with an immediate operational need for counter-UAS defenses in Germany. During the first week of August 2026, security personnel discovered a quadcopter drone carrying semtex plastic explosives near a Ukrainian cargo aircraft at Leipzig/Halle Airport. The discovery prompted a major security alert and a temporary shutdown of the airfield.
German federal authorities are actively investigating the incident. While The Guardian reported that United States intelligence officials suspect Russian involvement in the attempted sabotage, the German government has not issued a formal accusation. The official cause and origin of the drone remain under investigation.
Dobrindt characterized the Leipzig/Halle event as a professional hybrid threat scenario representing a new level of danger for the country, underscoring the urgency of the research being conducted at the new DLR facility.
Federal and State Integration
The Technology Center represents a formal collaboration between the Federal Ministry of the Interior (BMI), the Federal Ministry of Research, Technology and Space (BMFTR), and the Federal Criminal Police Office (BKA). The joint initiative aims to streamline the transition of counter-UAS technologies from research and development into active deployment by security forces.
Anke Kaysser-Pyzalla, Chair of the DLR Executive Board, noted that the center serves as a logical continuation of the successful cooperation between federal and state police authorities. Dorothee Bär, Federal Minister of Research, Technology and Space, confirmed that her ministry already funds the existing UAS competence and test centers at the site, highlighting the joint financial and operational commitment between the research and interior ministries.
AirPro News analysis
We view the activation of the Technology Center for Drone Security as a critical step in addressing the escalating vulnerability of commercial aviation infrastructure to asymmetric threats. The recent incident at Leipzig/Halle Airport demonstrates that airports are increasingly targeted by low-cost, highly capable UAS platforms deployed for sabotage or disruption.
Testing counter-UAS systems at an active airport like Magdeburg-Cochstedt provides invaluable data that cannot be replicated in isolated airspace. Mitigating drone threats in an airport environment requires navigating complex radio frequency congestion, avoiding interference with air traffic control systems, and ensuring the safety of conventional aircraft operations. As hybrid threats continue to evolve, we expect European airport operators and regulators to accelerate the procurement and certification of the defensive technologies currently being validated at the DLR facility.
Sources: German Aerospace Center (DLR)
Photo Credit: German Aerospace Center
UAV & Drones
Dufour Aerospace Aero-200 eVTOL Targets 2027 Serial Production
Dufour Aerospace advances Aero-200 eVTOL commercialization with payload tests, BVLOS infrastructure, and logistics partnerships in Sweden and Canada.

Dufour Aerospace is transitioning its Aero-200 tilt-wing electric vertical takeoff and landing (eVTOL) aircraft program from controlled flight testing to commercial deployment, emphasizing real-world operational capabilities over isolated performance metrics.
In a press release issued on August 18, 2026, the Swiss manufacturer detailed a series of recent milestones aimed at integrating the aircraft into existing logistics and medical transport networks. The company is focusing on weather resilience, remote operations control, and strategic partnerships to prepare the Aero-200 for serial production, which is targeted for 2027.
Demonstrating payload and range capabilities
A core component of the commercialization effort involves proving the aircraft can handle demanding mission profiles. On July 10, 2026, Dufour Aerospace completed a flight campaign at its Zurich-based test facility, successfully demonstrating the Aero-200 carrying a 20-kilogram payload over a 200-kilometer range.
To support scalable Beyond Visual Line of Sight (BVLOS) operations, the company has established a remote operator room in Dübendorf, Switzerland. This infrastructure is designed to manage flights in unpredictable weather and limited infrastructure environments.
“This flight campaign illustrates the profound potential the Aero-200 has for long-range missions carrying critical cargo or high-value sensors,” said Timon Wehmann, Chief Engineer at Dufour Aerospace. “For a vertical takeoff and landing drone in this category, navigating this distance while maintaining flawless stability throughout continuous maneuvering is a remarkable achievement.”
Strategic partnerships for commercial rollout
Dufour Aerospace has aligned with international operators to build the regulatory and operational framework necessary for deployment across different regions.
On May 6, 2026, the manufacturer announced a commercial partnership with Savback Helicopters to establish a long-range drone logistics network in Sweden. The agreement included a Memorandum of Understanding (MoU) for the acquisition of three Aero-200 aircraft. Michael Savback, Founder and Chief Executive Officer of Savback Helicopters, noted that the vast distances and challenging terrain in Sweden present a unique opportunity for drone logistics, framing the partnership as a step toward future Nordic unmanned logistics.
In North America, Dufour Aerospace is working with Volatus Aerospace to develop operations control center capabilities. On May 21, 2026, the companies completed their initial integration in Canada, marking the first remotely operated flight from the Volatus control center using Dufour’s scaled-down Aero-30 drone platform.
“The focus of our work with Dufour Aerospace is on building operational capability, not promoting individual performance metrics,” said Glen Lynch, Chief Executive Officer of Volatus Aerospace. “Governments and commercial operators alike are increasingly looking for reliable, runway-independent cargo solutions that can operate in remote and challenging environments.”
Targeting medical and regional logistics
The Aero-200 is being positioned as a cost-effective alternative to light helicopters for regional logistics and medical transport. Traditional rotorcraft face high operating costs and are susceptible to weather disruptions. According to data from the European Organisation for the Safety of Air Navigation (Eurocontrol) covering 2023 and 2024, weather conditions caused an estimated 10 to 15 percent of delays across European airspace.
In the medical sector, the speed and reliability of runway-independent drones offer measurable advantages. The press release cited a 2025 MDPI paper analyzing inter-hospital emergency drone deliveries in Madrid, which found time savings of 2 to 26 minutes compared to road transport. This represents a 35 to 58 percent reduction in transit time, achieving delivery times of approximately 15 minutes even during peak traffic periods.
AirPro News analysis
We view Dufour Aerospace’s recent updates as a necessary maturation step for the eVTOL sector. The industry is moving past the era of highly choreographed technology demonstrators and entering the complex phase of operational integration. By focusing on BVLOS infrastructure, control center integration with Volatus Aerospace, and specific regional use cases with Savback Helicopters, Dufour is addressing the unglamorous but critical hurdles of commercial aviation.
The emphasis on weather resilience and payload-range validation indicates that the company is preparing for the rigorous demands of European Union Aviation Safety Agency (EASA) certification. If the Aero-200 can consistently deliver 20-kilogram payloads over 200 kilometers in varied conditions, it presents a viable economic alternative to light helicopters for specialized logistics and medical operators.
Sources: Dufour Aerospace
Photo Credit: Dufour Aerospace
UAV & Drones
Shield AI V-BAT Earns SAIL III Authorization for EU Maritime Ops
Shield AI’s V-BAT UAS secured SAIL III approval from ENAC, enabling Frontex maritime surveillance in the Central Mediterranean.

Shield AI’s V-BAT unmanned aircraft system (UAS) has secured Specific Assurance and Integrity Level III (SAIL III) authorization from the Italian Civil Aviation Authority (ENAC), marking the highest approval level issued to date in Europe for unmanned maritime operations.
The authorization, detailed in an operational report published by Shield AI on August 17, 2026, enabled a maritime surveillance mission operated by Global Sat Tech for the European Border and Coast Guard Agency (Frontex). The operations were conducted from the Italian Coast Guard offshore patrol vessel Dattilo in the Central Mediterranean Sea, validating the integration of large vertical take-off and landing (eVTOL) Drones into regular maritime service under the European Union Aviation Safety Agency (EASA) Specific Operations Risk Assessment (SORA) framework.
Operational performance and maritime integration
During the deployment, which concluded in July 2026, two V-BAT aircraft logged 150 flight hours over 19 days at sea. At peak operational tempo, the two aircraft were airborne simultaneously for a combined 20 hours per day.
The V-BATs operated at distances up to 150 kilometers from the host ship. According to Shield AI, the platform maintained a 98 percent mission-readiness rate throughout the deployment. Falling into the 50-to-100 kilogram class, the V-BAT is the largest unmanned aircraft in its weight category to be flown by Frontex from a maritime vessel.
On July 8, 2026, senior representatives from Frontex and the Italian Coast Guard observed a live search and rescue simulation. During the exercise, a V-BAT successfully located a small inflatable boat and assisted in coordinating the simulated rescue response.
Regulatory milestones and global deployment
The SAIL III authorization represents a significant regulatory milestone for beyond visual line of sight (BVLOS) operations in European airspace. Shield AI initially announced the authorization and the completion of the Frontex pilot project on July 21, 2026.
The European deployment builds on the V-BAT’s established operational record. The platform has previously been deployed aboard United States Navy and United States Coast Guard vessels and is currently in service with the Royal Netherlands Navy. It has also conducted daily flight operations in Ukraine in environments with heavy electronic jamming. Additionally, defense forces in Japan and India have selected the V-BAT for maritime and army operations, respectively.
AirPro News analysis
Securing SAIL III authorization under the EASA SORA framework is a rigorous process that requires extensive documentation of system reliability, containment strategies, and operational procedures. For Shield AI, achieving this level of approval from ENAC demonstrates that the V-BAT can meet stringent European Safety standards for BVLOS flights in complex maritime environments.
We view this deployment as a critical proof of concept for the broader adoption of Group 3 VTOL UAS in European border and coast guard operations. The ability to operate a 50-to-100 kilogram aircraft from a patrol vessel without requiring a runway or recovery net significantly expands the organic intelligence, surveillance, and reconnaissance capabilities of individual ships. The 98 percent readiness rate over 150 flight hours suggests the platform has matured sufficiently to handle the corrosive and dynamic conditions of extended maritime deployments.
Sources: Shield AI
Photo Credit: Shield AI
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