
Hydrogen fuel has the potential to replace fossil fuels. Unlike fossil fuels, hydrogen does not emit carbon dioxide when used. Hydrogen can be produced using renewable energy sources, such as solar power, and can be used as a raw material for the chemical industry, helping to achieve climate neutrality. Hydrogen can be used in homes and buildings, in cars, in airplanes, in industry, in chemistry and metallurgy, in synthetic food production and in the military, more efficiently than any other known fuel.
| Characteristics | Values |
|---|---|
| Carbon emissions | Hydrogen does not emit carbon dioxide when used, unlike fossil fuels |
| Energy carrier | Hydrogen can be used as a primary or secondary energy carrier |
| Production | Green hydrogen is produced using electrolyzers to split water into hydrogen and oxygen |
| Use cases | Hydrogen can be used in homes and buildings, in cars, in airplanes, in industry, in chemistry and metallurgy, in synthetic food production and in the military |
| Raw material | Hydrogen produced from renewable energy can function as a key raw material for the chemical industry |
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What You'll Learn

Hydrogen can replace fossil fuels without emitting carbon dioxide
There are two main options for the post-fossil fuel era. The first is a fusion hydrogen combination, in which fusion is the primary energy source and hydrogen is the energy carrier. The second option, the solar-hydrogen alternative, is less widely discussed, but it is far more likely to succeed in a reasonable time frame. It involves collecting solar energy in highly insolated regions to produce hydrogen from water. The hydrogen would then be transported to consumption centres to meet energy requirements.
Hydrogen can be used in homes and buildings, in cars, in airplanes, in industry, in chemistry and metallurgy, in synthetic food production, and in the military, more efficiently than any other known fuel. It does not emit any carbon dioxide when used and, when produced with renewable energies, it offers a solution to decarbonise industrial processes. For example, hydrogen can be used as feedstock and an energy carrier in energy-intensive industry sectors.
Green hydrogen is produced using electrolyzers to split water into hydrogen and oxygen. The hydrogen can be used, while the oxygen is vented harmlessly into the atmosphere. There is a significant opportunity to replace fossil fuels with green hydrogen.
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Hydrogen can be used in homes, buildings, cars, planes, and industry
There are two main options for replacing fossil fuels with hydrogen. The first is a fusion hydrogen combination, in which fusion is the primary energy source and hydrogen is the energy carrier. The second option is the solar-hydrogen alternative, which is less widely discussed but far more likely to succeed in a reasonable timescale. Solar energy would be collected in highly insolated regions and used to produce hydrogen from water. The hydrogen would then be transported to consumption centres to meet energy requirements.
Hydrogen can be used more efficiently than any other known fuel, and it does not emit carbon dioxide when used. This makes it an attractive option for decarbonising industrial processes and meeting climate neutrality goals.
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Hydrogen can be produced using renewable energy
Another way to produce hydrogen using renewable energy is through the solar-hydrogen alternative. This involves collecting solar energy in highly insolated regions and using it to produce hydrogen from water. The hydrogen can then be transported to consumption centres to meet energy requirements.
Hydrogen produced from renewable energy can be used as a feedstock and energy carrier in energy-intensive industry sectors. It is a zero-carbon energy carrier, just like electricity, but it has an advantage when it comes to decarbonising sectors that are hard to electrify, such as heavy industry, long-haul transportation, or seasonal storage.
By using hydrogen produced from renewable energy, the EU industry can reduce emissions across a number of sectors and help achieve climate neutrality goals.
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Hydrogen is a zero-carbon energy carrier
The use of hydrogen as an energy carrier offers a significant opportunity to replace fossil fuels. Green hydrogen, for example, is produced using electrolyzers to split water into hydrogen and oxygen. The hydrogen can then be used as an energy source, while the oxygen is released harmlessly into the atmosphere.
For the post-fossil fuel era, there are two main options for utilising hydrogen. The first is a fusion hydrogen combination, where fusion is the primary energy source and hydrogen is the energy carrier. The second option is the solar-hydrogen alternative, which is less widely discussed but more likely to succeed within a reasonable timeframe. This involves collecting solar energy in highly insolated regions to produce hydrogen from water. The hydrogen would then be transported to consumption centres to meet energy requirements.
Hydrogen has a wide range of potential applications, including use in homes and buildings, transportation (cars, airplanes), industry, chemistry and metallurgy, synthetic food production, and military applications. It can be used more efficiently than any other known fuel.
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Green hydrogen is produced using electrolyzers
Hydrogen fuel can replace fossil fuels. It is a zero-carbon energy carrier, just like electricity, but it has an edge when it comes to decarbonising sectors that are hard to electrify, such as heavy industry, long-haul transportation, or seasonal storage. Hydrogen does not emit carbon dioxide when used and, when produced with renewable energies, it offers a solution to decarbonise industrial processes.
There are two main options for the post-fossil fuel era. The first is a fusion hydrogen combination, in which fusion is the primary energy source and hydrogen is the energy carrier. The second option, the solar-hydrogen alternative, is less widely discussed, though it is far more likely to succeed in a reasonable time-scale. It is envisioned that solar energy will be collected in highly insolated regions, where it will be used to produce hydrogen from water. Hydrogen would then be transported to consumption centres to meet energy requirements.
Hydrogen can be used in homes and buildings, in cars, in airplanes, in industry, in chemistry and metallurgy, in synthetic food production, and in the military, more efficiently than any other known fuel. Hydrogen produced from renewable energy can function as a key raw material for the chemical industry to help achieve climate neutrality.
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Frequently asked questions
Yes, hydrogen fuel can replace fossil fuels.
Hydrogen fuel can be used as a feedstock and energy carrier in energy-intensive industry sectors. It can also be used in homes and buildings, in cars, in airplanes, in chemistry and metallurgy, in synthetic food production and in the military.
Hydrogen fuel does not emit any carbon dioxide when used and, when produced with renewable energy, it can help to decarbonise industrial processes.
Green hydrogen is produced using electrolyzers to split water into hydrogen and oxygen. The hydrogen can be used, while the oxygen is vented harmlessly into the atmosphere.











































