Sustainable Aviation
ZeroAvia and HAV Partner to Develop Hydrogen-Powered Airlander 10
UK companies ZeroAvia and Hybrid Air Vehicles collaborate to create a zero-emission hydrogen-electric Airlander 10 for sustainable aviation.

A New Dawn for Aviation: ZeroAvia and HAV Partner for a Hydrogen-Powered Airlander
The quest to decarbonize the aviation industry is one of the most significant challenges of our time. As the world grapples with the need for sustainable travel, innovators are pushing the boundaries of what’s possible. In a landmark move, two pioneering UK-based companies, ZeroAvia and Hybrid Air Vehicles (HAV), have announced a partnership that promises to accelerate the journey toward zero-emission flight. This collaboration centers on developing a Hydrogen-electric version of the revolutionary Airlander 10 aircraft, a move that could redefine the future of regional mobility and logistics.
At its core, this partnership brings together two distinct but complementary technologies. ZeroAvia is a leader in developing hydrogen-electric powertrains, essentially creating the clean engines of the future. Hybrid Air Vehicles has engineered the Airlander, a new class of ultra-efficient hybrid aircraft that blends the principles of airships and traditional planes. By signing a Memorandum of Understanding (MOU), they have formalized their intent to integrate ZeroAvia’s cutting-edge propulsion system into the unique and versatile Airlander airframe. This isn’t just an incremental improvement; it’s a foundational shift toward a new, sustainable aviation market.
The significance of this collaboration extends beyond the technical integration. It represents a powerful synergy between two innovators committed to building a green aerospace sector in the United Kingdom. Both companies are expanding their manufacturing and development footprints, signaling a potential boom in skilled jobs and solidifying the UK’s position at the forefront of sustainable aviation technology. This partnership is not just about building one aircraft; it’s about laying the groundwork for a future where clean, efficient, and versatile air travel becomes the norm.
The Strategic Alliance: Forging a Path to Zero Emissions
The agreement between ZeroAvia and HAV is a calculated and strategic move designed to leverage the strengths of each company. The primary objective is to replace the Airlander 10’s initial diesel engines with four of ZeroAvia’s 600kW ZA600 hydrogen-electric powertrains. This modification is set to transform the aircraft into a fully zero-emission vehicle during flight, capable of carrying over 100 passengers or a ten-tonne payload without releasing harmful emissions into the atmosphere. The collaboration builds upon HAV’s previous research into electric propulsion, fast-tracking the path to a commercially viable, clean aircraft.
A Perfect Match of Airframe and Powertrain
The Airlander 10’s unique design makes it an exceptionally suitable platform for hydrogen power. One of the biggest hurdles for hydrogen adoption in conventional fixed-wing aircraft is the challenge of storing the fuel, which requires significant volume. The Airlander’s massive hull, however, provides ample space for hydrogen storage, elegantly solving this critical engineering problem. This natural compatibility allows for the integration of certified hydrogen technologies that are already nearing market entry, including low-temperature PEM fuel cells and advanced electric propulsion systems.
This synergy was highlighted by the leaders of both companies. Tom Grundy, CEO of Hybrid Air Vehicles, noted that the company’s intention has always been to offer a zero-emission variant and that ZeroAvia’s impressive progress made them the ideal partner. This sentiment was echoed by Val Miftakhov, Founder and CEO of ZeroAvia, who emphasized the new markets the Airlander could unlock.
“Airlander is another exciting airframe for line-fit of our powertrains as it can open up a whole new market in air travel due to its range, efficiency and ability to operate from almost anywhere.”, Val Miftakhov, Founder & CEO, ZeroAvia.
The partnership also looks to the future, with the agreement including provisions to study the application of ZeroAvia’s technology for larger Airlander models. Furthermore, the companies will work together to define the necessary hydrogen refueling infrastructure, a crucial step in creating a viable operational ecosystem for these next-generation aircraft.
The Technology Powering the Change
Understanding the technology behind this partnership reveals why it is such a groundbreaking development. The collaboration combines a revolutionary aircraft design with a state-of-the-art propulsion system, each a significant innovation in its own right. Together, they represent a formidable step toward making sustainable aviation a reality.
The Airlander 10: More Than Just an Airship
The Airlander 10 is a hybrid Aircraft that utilizes a combination of aerostatic lift from helium, aerodynamic lift like a traditional plane, and vectored thrust for maneuverability. This design makes it incredibly efficient. The initial production version, powered by four diesel engines, already reduces emissions by up to 90% compared to conventional aircraft with similar capacity. With a payload of 10 tonnes and a maximum range of 4,000 nautical miles, its capabilities are vast. A key advantage is its operational flexibility; the Airlander can take off and land from almost any surface, including water or unprepared fields, opening up new routes and possibilities for transport and logistics.
ZeroAvia’s ZA600: The Hydrogen-Electric Heart
At the heart of the zero-emission Airlander will be ZeroAvia’s ZA600 powertrain. This 600kW system uses low-temperature PEM (Proton-Exchange Membrane) fuel cells to convert hydrogen into electricity, which then powers the electric motors. The only byproduct of this process is water, eliminating in-flight carbon emissions entirely. The ZA600 is not a concept; it is a well-developed system that has already passed several regulatory milestones with both the U.S. FAA and the UK CAA. ZeroAvia has successfully flight-tested a prototype on a 19-seat aircraft and has secured hundreds of pre-orders from Airlines, demonstrating strong market confidence in its technology.
Concluding Section: A New Trajectory for Air Travel
The collaboration between ZeroAvia and Hybrid Air Vehicles is more than just a technical agreement; it’s a clear signal of the future trajectory of the aviation industry. By combining an inherently efficient airframe with a proven zero-emission powertrain, this partnership tackles the challenge of decarbonization head-on. It accelerates the timeline for a fully electric model and creates a powerful platform that could open entirely new markets in passenger travel, tourism, and freight logistics, all with a minimal environmental footprint.
Looking forward, the implications are profound. The successful development of a hydrogen-electric Airlander will not only provide a clean mode of transport but will also drive the development of a broader hydrogen ecosystem, from production to refueling infrastructure. For the UK, it represents a significant economic opportunity, fostering a green Manufacturing boom and creating hundreds of skilled jobs. This partnership is a bold step, charting a course toward a future where we can travel the world efficiently, quietly, and sustainably.
FAQ
Question: What is the main goal of the ZeroAvia and Hybrid Air Vehicles partnership?
Answer: The primary goal is to develop a fully zero-emission version of the Airlander 10 aircraft by integrating four of ZeroAvia’s ZA600 hydrogen-electric powertrains, replacing the initial diesel engines.
Question: Why is the Airlander 10 aircraft a good platform for hydrogen power?
Answer: The Airlander 10’s large hull provides ample space for hydrogen storage, which is a major challenge for conventional aircraft. This design feature makes it an ideal candidate for adopting hydrogen-electric technology.
Question: What are the benefits of the hydrogen-electric Airlander 10?
Answer: The hydrogen-electric Airlander 10 will offer fully zero-emission in-flight operations, capable of carrying over 100 passengers or a ten-tonne payload. It will also benefit from reduced maintenance costs and the ability to operate from almost any surface, opening up new markets for sustainable travel and logistics.
Sources: ZeroAvia
Photo Credit: ZeroAvia
Sustainable Aviation
KBR Selected for Asia’s First Ethanol-to-Jet SAF Plant in Singapore
KBR will provide PureSAF technology licensing and FEED services for a 100,000-ton/year SAF facility on Jurong Island, Singapore.

On June 29, 2026, KBR announced its selection by Keppel Ltd. and Aster Chemicals and Energy to provide technology licensing and Front-End Engineering Design (FEED) services for a proposed 100,000-ton-per-year SAF (SAF) facility on Jurong Island, Singapore.
The planned facility is envisioned as Asia’s first commercial-scale ethanol-to-jet (EtJ) SAF plant. According to the KBR press release, the project will utilize the company’s PureSAF technology to produce a 100% drop-in jet fuel, supporting Singapore’s national mandate to increase sustainability usage across the aviation sector.
PureSAF technology and project scope
The Jurong Island facility will leverage PureSAF, a technology originally developed by Swedish Biofuels AB and engineered for commercial-scale production by KBR, which holds the exclusive global license. The process is designed to convert ethanol into aviation fuel that requires no blending with conventional Jet A or Jet A-1 before use.
In a statement accompanying the announcement, KBR President and CEO Stuart Bradie highlighted the system’s flexibility.
“KBR’s PureSAF is a feedstock-flexible, bankable technology that is designed to deliver a 100% drop in jet fuel, ready to power aircraft without blending. We are constantly innovating our SAF solution to make it compatible with feedstock availability in different regions and to enable the aviation industry to transition to low-carbon jet fuel with a cost-optimized approach.”
The FEED study will determine the technical configuration and project capital expenditure required for the facility. The development remains subject to regulatory approvals and a final investment decision (FID) by the project partners.
Aligning with Singapore’s aviation mandates
The selection of KBR follows a January 28, 2026, agreement between Keppel’s Infrastructure Division and Aster to jointly assess the development of the Jurong Island site. Aster operates as a joint venture between Indonesian petrochemical company Chandra Asri and Swiss commodities trader Glencore.
The proposed 100,000-ton annual production capacity aligns directly with targets set by the Civil Aviation Authority of Singapore (CAAS). Starting in 2026, the CAAS mandates a 1% SAF uplift for all departing flights from the country, with a stated goal of increasing that requirement to between 3% and 5% by 2030.
Alongside the SAF plant contract, KBR and Keppel signed a Memorandum of Intent to collaborate on broader energy transition initiatives. The companies plan to explore technologies related to waste-to-energy, plastic recycling, biofuels, and artificial intelligence-driven digitalization.
AirPro News analysis
We view the progression of the Jurong Island project to the FEED stage as a critical indicator of the Asia-Pacific region’s readiness to scale SAF production. While North America and Europe have led early SAF capacity investments, Singapore’s firm regulatory mandate provides the demand certainty required to underwrite commercial-scale facilities in Southeast Asia. The choice of an ethanol-to-jet pathway is particularly notable, as it allows operators to bypass the constrained supply of fats, oils, and greases that limit hydroprocessed esters and fatty acids (HEFA) production volumes. The project’s ultimate realization hinges on the upcoming final investment decision, which will test the commercial viability of the EtJ process in the current economic environment.
Sources: KBR
Photo Credit: KBR
Sustainable Aviation
NGO Coalition Pushes EU to End Aviation ETS Exemption
The SASHA Coalition urges the EU to end its ETS exemption for international flights ahead of the July 2026 legislative review.

A coalition of environmental and industry non-governmental organizations is urging the European Commission to end the European Union Emissions Trading System exemption for international flights, a move proponents estimate could generate €130 billion in carbon market revenues between 2027 and 2035.
In a campaign coordinated by the SASHA Coalition, groups including Opportunity Green, Transport & Environment, and Carbon Market Watch are targeting the upcoming legislative revision of the European Union Emissions Trading System (EU ETS) scheduled for July 2026. The coalition argues that integrating extra-EEA flights into the carbon pricing mechanism is necessary to fund clean aviation technologies, specifically electro-Sustainable Aviation Fuel (eSAF) and Direct Air Capture (DAC) infrastructure.
The financial and environmental cost of the exemption
The European Union initially included aviation in the ETS on January 1, 2012, but introduced a stop-the-clock mechanism exempting extra-EEA flights following international pressure. According to a policy briefing from the SASHA Coalition, this exemption left an estimated 1.1 billion tonnes of carbon dioxide emissions unregulated between 2012 and 2023. The coalition calculates this resulted in €26 billion in uncollected carbon market revenues during that period.
If the exemption is maintained after its scheduled expiration in 2027, the coalition projects that 1.3 billion tonnes of carbon dioxide emissions will go unregulated through 2035. A full-scope ETS could generate an estimated €14 billion in annual revenue for European Union member states by 2030.
Industry perspectives on carbon pricing and CORSIA
The debate centers on the effectiveness of the United Nations Carbon Offsetting and Reduction Scheme for International Aviation (CORSIA). The European Commission is required to assess by mid-2026 whether CORSIA delivers sufficient environmental ambition. Environmental groups argue the UN scheme is structurally unfit because it relies on offsetting rather than absolute emissions reduction and targets only emissions above a high baseline. Conversely, Airlines and industry groups have historically opposed extending the EU ETS to international flights, citing concerns over market distortions, potential violations of international law, and competitive disadvantages for European hubs.
Clean technology providers argue that a strong regulatory framework is required to drive investment. During a June 9, 2026 roundtable event at the European Parliament convened by the SASHA Coalition, NEG8 Carbon Head of Business Development Dr. David Mulrooney emphasized the necessity of the ETS for commercial strategy.
“To answer your question directly: the EU ETS is foundational to our commercial strategy. NEG8 supplies atmospheric CO2 capture. The stronger and more consistent the carbon price signal, the stronger the investment case for the infrastructure we sell into. ETS is not a policy backdrop for us. It is the market mechanism our business is built on,” Mulrooney stated.
Mulrooney advocated for directing ETS revenue into DAC and eSAF to drive down costs, similar to historical cost curves for solar power and batteries. Member of the European Parliament Cynthia Nà Mhurchú also spoke at the event, noting that regulatory certainty is critical for future planning.
AirPro News analysis
The July 2026 review of the EU ETS represents a critical juncture for European aviation policy. We observe that the European Commission is caught between two competing pressures: the mandate to meet aggressive decarbonization targets and the risk of triggering international trade disputes if it unilaterally prices emissions on extra-EEA flights. The SASHA Coalition focus on revenue generation for eSAF and DAC is a strategic pivot, framing the ETS not just as a punitive tax but as a necessary funding mechanism for the aviation industry transition. Overcoming airline opposition to overlapping carbon pricing regimes will require the Commission to clearly articulate how the EU ETS and CORSIA can coexist without creating prohibitive administrative and financial burdens for operators.
Sources: SASHA Coalition
Photo Credit: SASHA Coalition
Sustainable Aviation
Delta Air Lines Installs VCT Finlets on 240 Boeing 737NG Jets
Delta Air Lines will fit aerodynamic finlets from Vortex Control Technologies on 240 Boeing 737-800 and 737-900ER aircraft.

Delta Air Lines will install aerodynamic finlets from Vortex Control Technologies across 240 of its Boeing 737 Next Generation aircraft to reduce drag and lower fuel consumption.
Announced in a company press release on June 17, 2026, the modification program targets the carrier’s Boeing 737-800 and 737-900ER fleets. The installation follows computational fluid dynamics analysis and flight test validation, aligning with Delta’s broader sustainability objectives to address the 90 percent of its carbon footprint generated by jet fuel.
Aerodynamic modifications and fleet implementation
The Vortex Control Technologies (VCT) finlet package consists of small aerodynamic devices installed on the aft fuselage of the aircraft. These structures are designed to reshape airflow around the tail section, reducing flow separation and improving overall pressure distribution. By mitigating aerodynamic drag, the finlets directly decrease the amount of thrust required during cruise, resulting in lower fuel burn.
Delta Air Lines Chief Sustainability Officer Amelia DeLuca stated that the carrier seeks out innovations that reduce environmental impact and generate long-term operational benefits.
“We appreciate the strong partnership with VCT throughout the evaluation process and are looking forward to this implementation to further support our ongoing fleet efficiency initiatives,” DeLuca said.
VCT Chief Executive Officer Gil Morgan noted that equipping the 240 Delta aircraft represents a significant milestone for the manufacturer.
“We are proud to provide a practical technology that helps airlines improve fuel efficiency, reduce carbon emissions and enhance operating economics,” Morgan said.
Regulatory approval and industry adoption
The VCT finlet system operates under a Federal Aviation Administration (FAA) Supplemental Type Certificate (STC). The technology has steadily gained traction among Boeing 737 Next Generation (737NG) operators seeking incremental efficiency improvements. On September 26, 2025, the European Union Aviation Safety Agency (EASA) validated the FAA STC, clearing the devices for installation on European-registered aircraft.
Other operators have also adopted the modification. On July 29, 2025, Avelo Airlines announced a follow-on order for additional VCT finlets. The carrier reported proven fuel savings and emissions reductions after 18 months of in-service performance across its own Boeing 737NG fleet.
AirPro News analysis
We view Delta’s adoption of aft-fuselage finlets as a pragmatic approach to extending the economic viability of its Boeing 737NG fleet. While winglets have long been the industry standard for drag reduction, aft-body modifications represent an incremental but valuable efficiency gain for mature airframes. As airlines manage delayed deliveries of next-generation narrowbody aircraft, retrofitting existing fleets with drag-reducing technology offers an immediate reduction in fuel burn and emissions without requiring significant downtime or capital expenditure.
Sources: Delta News Hub
Photo Credit: Delta Air Lines
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