Published by Todd Bush on September 11, 2026
Methanol-to-jet has crossed a critical technical gate for commercial aviation fuel. ASTM D7566-26a, the active specification updated July 30, 2026, incorporates methanol into the Annex A5 alcohol-to-jet pathway. The change does not make methanol-derived fuel automatically sustainable or economic, but it gives MTJ developers something essential: an accepted route into the aviation fuel specification system.
Annex A5 alcohol-to-jet synthetic paraffinic kerosene, or ATJ-SPK, has a maximum blend level of 50% by volume with conventional jet fuel. ASTM's current specification confirms Annex A5 as the ATJ pathway, and ICAO's SAF conversion-process documentation lists the Annex A5 maximum blend at 50%. The July revision expands the alcohol feedstock platform to methanol.
Commercial aircraft refueling illustrates the existing aviation fuel system that qualified D7566 synthetic blending components can enter after certification and blending.
ASTM qualification addresses a barrier that a successful pilot plant cannot remove. D7566 defines requirements for aviation turbine fuel containing approved synthetic blending components and establishes how those components enter certified aviation fuel.
The commercial importance is explicit in the standard. Fuel manufactured, certified and released to D7566 requirements meets ASTM D1655 requirements and is regarded as D1655 turbine fuel. ASTM also states that after redesignation as D1655 fuel, it can be handled like equivalent conventionally refined aviation turbine fuel.
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The market still needs additional pathways. IATA estimates global SAF production will reach about 2.4 million metric tonnes in 2026, only 0.8% of aviation fuel consumption. Its long-term estimate is roughly 500 million metric tonnes of annual SAF supply to support aviation's 2050 net-zero pathway.
>> RELATED: New Report Identifies Methanol-to-Jet as a Key Accelerator of the Next Wave of Sustainable Aviation Fuel
MTJ adds another feedstock option to the SAF portfolio rather than displacing HEFA, ethanol-to-jet or power-to-liquid routes. Its distinguishing commercial feature is methanol's flexibility as an intermediate molecule.
| SAF pathway | Main feedstock | Commercial maturity | Feedstock constraint | Key advantage |
|---|---|---|---|---|
| HEFA | Fats and oils | Commercial | Finite sustainable lipid supply | Established production base |
| Ethanol-to-jet | Ethanol | Early commercial | Ethanol economics and lifecycle carbon intensity | Large U.S. ethanol production base |
| Methanol-to-jet | Methanol | Emerging | Supply and cost of qualifying low-carbon methanol | Multiple potential methanol production routes |
| PtL/eSAF | Captured CO2 + hydrogen | Early commercial | Renewable electricity and hydrogen cost | Low dependence on fossil carbon feedstocks |
LanzaJet's ethanol-to-jet commercialization demonstrates how ASTM qualification can be followed by industrial deployment. Its Freedom Pines Fuels plant in Georgia has annual capacity of 10 million gallons. MTJ now has the specification pathway, but still needs its corresponding commercial-scale operating milestone.
"Methanol-to-Jet offers a realistic pathway to scale because it connects aviation to an existing industrial system that is already global, flexible, and growing."
Alexander Döll, Chief Executive Officer, MI - The Global Methanol Alliance
Aviation can now compete with shipping and chemicals as a downstream market for renewable methanol. MI reports more than 110 million metric tonnes of global annual methanol production, but only about 0.9 million tonnes of current renewable methanol production. That distinction is central to the MTJ opportunity.
The shipping sector has already helped create demand for renewable methanol. More than 150 methanol-capable vessels are operating and over 290 are on order, according to MI. DecarbonFuse has also tracked an 8,000-metric-ton biomethanol bunkering operation in Shanghai supplied from Shanghai Electric's Taonan project.
Industrial liquid storage infrastructure illustrates the type of established handling and logistics system available to the broader methanol market.
MTJ potentially links aviation to that expanding supply chain. Methanol can be made from biogenic resources, including waste-derived carbon streams, or synthesized from captured CO2 and renewable hydrogen. However, conventional fossil-derived methanol remains very different from renewable methanol when lifecycle emissions are calculated.
Methanol-to-jet can connect different low-carbon methanol production routes with an ASTM-qualified aviation fuel pathway.
The commercial distinction is important. carbon-utilization projects producing methanol and renewable hydrogen-based e-methanol projects could gain another potential customer class. ASTM qualification expands the addressable market for the molecule, but does not guarantee that individual methanol projects meet SAF sustainability rules.
Nacero provides the clearest U.S. project case study. Its planned Texas facility is designed around Topsoe's SynCOR Methanol and MTJet technologies. Nacero has stated that a fully developed facility could produce 250 million gallons per year of zero-sulfur products, including up to 145 million gallons per year of SAF.
Nacero announced the Texas MTJ project in 2023, when MTJ was still moving through ASTM qualification. The company subsequently said DOE invited Nacero TX to submit a Part II application for a Title XVII loan guarantee covering approximately 75% of project capital.
"Part II success will contribute meaningfully to the overall financeability of our first project under a platform that aims to commercialize new technologies within the clean energy space to reduce emissions in hard-to-abate industries."
Jess Cole, CFO, Nacero
That invitation dates to May 2023 and is not a DOE loan commitment. Nacero's original announcement targeted a mid-2024 final investment decision, a timetable that has passed. The ASTM revision therefore improves the project's technical commercialization framework, but should not be interpreted as evidence that financing or construction has been completed.
Honeywell provides another U.S. connection. In February 2026, the company said Verso Energy selected its eFining methanol-to-jet technology for seven planned eFuel sites across France, Finland and the United States. In Canada, Ontario-based SIVA Green Energies describes planned RNG-to-methanol-to-SAF and CO2-plus-hydrogen-to-methanol-to-SAF pathways. These remain development initiatives rather than operating commercial MTJ plants.
SWISS and the Lufthansa Group partnered with Metafuels in 2026 to advance aerobrew methanol-to-jet eSAF, a pathway now covered under ASTM D7566 Annex A5.
ASTM D7566 addresses technical fuel qualification, not the lifecycle carbon intensity of the methanol feedstock. Fossil-derived methanol can satisfy chemical requirements for an MTJ process without thereby becoming low-carbon SAF. Technical qualification, sustainability certification and subsidy eligibility are separate tests.
That distinction matters under U.S. Section 45Z. For fuel produced after December 31, 2025, the credit does not provide a special MTJ rate. Instead, the credit value depends on lifecycle emissions relative to the statutory baseline of 50 kilograms of CO2e per million Btu. A transportation fuel must have an emissions rate no greater than that threshold to qualify.
For SAF, taxpayers can use allowed CORSIA methodologies or 45ZCF-GREET as provided by Treasury guidance. The June 2026 update to 45ZCF-GREET therefore makes the methanol production route commercially important. Renewable electricity, hydrogen production, captured-carbon sourcing and other lifecycle inputs can materially change an MTJ fuel's calculated emissions rate.
There is another restriction for U.S. projects. Transportation fuel produced after December 31, 2025 must be exclusively derived from feedstock produced or grown in the United States, Mexico or Canada to qualify for 45Z. Treasury's February 2026 proposed regulations also confirm that the credit now applies to qualifying fuel sold through December 31, 2029.
The ASTM revision changes the MTJ market because developers no longer face the same pathway-qualification uncertainty. It does not prove that MTJ will beat HEFA, ethanol-to-jet or other eSAF technologies on delivered cost.
Low-carbon methanol is still scarce compared with the total methanol market. MI currently reports more than 110 million metric tonnes of annual methanol production but only about 0.9 million tonnes of renewable production. That gap explains both the opportunity and the constraint.
Commercial infrastructure is beginning to form around the pathway. Argus launched its first methanol-to-jet cost indexes in July 2026 for nine production locations, following effective ASTM approval of the pathway.
The next decisive proof point will be an operating commercial-scale MTJ plant delivering specification-compliant fuel under a bankable aviation offtake. For North America, Nacero's financing and project-development status remains worth watching. ASTM has opened the technical door. Developers must now prove that low-carbon methanol can move through it at commercial scale.
What is the ASTM blend limit for methanol-to-jet fuel?
Methanol is included in the ASTM D7566 Annex A5 alcohol-to-jet pathway. ATJ-SPK under Annex A5 can be blended at up to 50% by volume with conventional aviation turbine fuel before the finished fuel is certified to the applicable specification.
Does ASTM approval make fossil-derived methanol sustainable aviation fuel?
No. ASTM qualification establishes technical fuel requirements. Lifecycle emissions, feedstock origin, sustainability certification and incentive eligibility are separate issues.
Does Section 45Z favor methanol-to-jet over other SAF pathways?
Not simply because the fuel uses MTJ. Section 45Z is tied to lifecycle greenhouse-gas performance and other eligibility requirements, so the way the methanol and finished fuel are produced remains critical.
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