ATP is required to make the reaction happen. My suspicion is that it's energy net-negative. Sure you make some electricity but how much does it cost to make ATP? Probably more than you get out in electricity. Not that there's a fast and easy way to turn electricity into ATP. https://www.reddit.com/r/askscience/comments/46ax8r/can_elec...
Theoretically, ATP could be harvested from plants or bacteria. They could also be modified to produce the ammonia directly via this reaction. That wouldn't actually reduce the energy cost, but it could reduce the economic cost by making it logistically easier to produce. Maybe instead of making ammonia in complicated chemical plants, we could "grow" it on farms.
I mean, sure, you can do that. But it's kind of silly. "Grow" ammonia feedstock on farms to then turn into fertilizer to use at the farm to grow food?
Maybe you should just plant legumes instead and let them fix the nitrogen straight into the soil where you want to grow food. It's not sexy since it's 19th century technology (or older) but it works. And it requires very little in the way of logistics or infrastructure meaning that it's resilient.
Oh you city slickers... This has been a thing for centuries and it works pretty well. Getting big industry in the middle of the process would be new but the process is old.
IIRC, ATP is a short lived energy carrier in cells. Instead of harvesting it from cells, it's probably easier to turn that around and use the existing ATP mechanism in cells to generate ammonia.
All of the components involved are being extracted from existing cells. There are already plenty of nitrogen fixing bacteria, the sources of their nitrogenase and hydrogenase enzymes.
This is maybe novel in that they got the nitrogenases working in vitro. But from a world changing technology perspective this is a very tiny step compared to re-engineering the enzymes to work off of a different non-biological energy source than ATP.
Of course it is energy net negative. There is an energy cost to reducing nitrogen to ammonia. Enzymes aren't magic and nothing changes the energy cost equation of the products vs the reagants.
Of course it is not an energy negative. The production of ammonia from hydrogen and nitrogen gas is an exothermic process. At room temperature it's even a spontaneous process.
The reason we need these complicated processes is the massive activation energy of the reaction, making it extremely slow uncatalyzed.
These are professional chemists, publishing in a serious journal. Did you really think they didn't take into account the basic energy balance of their equation?
Not sure where you get a pure hydrogen source on this planet without using some energy. I'd like to own such a source. Sort of like owning an oil well.
That's moving the goalposts. The point of this is to reduce the energy cost of making ammonia, assuming you already have hydrogen gas available.
The article is not purporting to have conceived of a new energy source, only to have found a way to recuperate some of the cost of making ammonia, by extracting some energy from a step that ought to be a net energy producer.
I was thinking that producing the hydrogen feed stock would be most of the energy used in the process. This site [1] states that, using the current global feed stock mix of light carbon and heavy carbon sources, about half the energy used in production is feed stock energy and half is added energy. Maybe an industrial chemist could estimate how much energy this new tech could save if it could be used at the scale needed?
I'd like to remind you that the process we are discussing is currently responsible for 1% of the world's energy consumption annually. That's clearly a "net-negative" cost. Feel free to review the Haber-Bosch process to confirm.
Ammonia has a negative enthalpy of formation of about -46 kJ/mol [0]. If you read the wikipedia page of the Haber process [1] it explicitly states the reaction is exothermic.
The reason the Haber process is so costly is because it uses very high pressures and temperatures to overcome the activation energy, even with the best catalysts we have. Not because creating ammonia from nitrogen and hydrogen needs energy. It's in effect wasted energy.
Enzymes can't change the cost equation, but luckily it's in our favor. If they can reduce the activation energy without wasting a ton of energy, it can be a net energy producer.
Nobody is saying hydrogen is free. Nor will the production of ammonia from compounds we have in abundance (i.e. water, air and rock) ever produce energy, as it's a high energy compound, releasing quite a bit of energy when combusted. But that is absolutely not what this is about.
However, I was refuting the GP's wrong assertion that the energy cost equation of this reaction shows that it cannot be a net energy producer.
It makes sense to optimize this step, because the energy equation shows the energy is just wasted as heat, as it's not contained in the compound itself.
Just from a conservation of energy perspective it has to be net-negative. There is going to be something fed into entropy and that something had to come from somewhere.
I think this isn't interesting for terrestrial usage but for space travel where ATP can be used as an efficient chemical energy store.
Replying to a number of previous comments on energy balances.
The reaction N2 + 3 H2 -> 2 NH3 is exothermic, giving off energy [1]. N2 is abundant and free (80% of the atmosphere), but H2 is not. The most common way [2] of producing H2 is from hydrocarbons (oil/gas products). In principle H2 can be produced from something else (e.g. water, through electrolysis), but that is very energy intensive [1], making the overall reaction N2 + 3 H2O -> 2 NH3 + 3/2 O2 a net energy consumer.
Point being, yes, it might be possible to save energy compared to the Haber-Bosch process, but the net production of ammonia from free/abundant materials will not ever be "for free" energy-wise.
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[ 11.8 ms ] story [ 59.8 ms ] threadMaybe you should just plant legumes instead and let them fix the nitrogen straight into the soil where you want to grow food. It's not sexy since it's 19th century technology (or older) but it works. And it requires very little in the way of logistics or infrastructure meaning that it's resilient.
https://en.wikipedia.org/wiki/Nitrogen_fixation
https://en.wikipedia.org/wiki/Green_manure
This is maybe novel in that they got the nitrogenases working in vitro. But from a world changing technology perspective this is a very tiny step compared to re-engineering the enzymes to work off of a different non-biological energy source than ATP.
The reason we need these complicated processes is the massive activation energy of the reaction, making it extremely slow uncatalyzed.
These are professional chemists, publishing in a serious journal. Did you really think they didn't take into account the basic energy balance of their equation?
The article is not purporting to have conceived of a new energy source, only to have found a way to recuperate some of the cost of making ammonia, by extracting some energy from a step that ought to be a net energy producer.
[1] http://ietd.iipnetwork.org/content/ammonia
The reason the Haber process is so costly is because it uses very high pressures and temperatures to overcome the activation energy, even with the best catalysts we have. Not because creating ammonia from nitrogen and hydrogen needs energy. It's in effect wasted energy.
Enzymes can't change the cost equation, but luckily it's in our favor. If they can reduce the activation energy without wasting a ton of energy, it can be a net energy producer.
0: https://en.wikipedia.org/wiki/Ammonia 1: https://en.wikipedia.org/wiki/Haber_process
However, I was refuting the GP's wrong assertion that the energy cost equation of this reaction shows that it cannot be a net energy producer.
It makes sense to optimize this step, because the energy equation shows the energy is just wasted as heat, as it's not contained in the compound itself.
I think this isn't interesting for terrestrial usage but for space travel where ATP can be used as an efficient chemical energy store.
The reaction N2 + 3 H2 -> 2 NH3 is exothermic, giving off energy [1]. N2 is abundant and free (80% of the atmosphere), but H2 is not. The most common way [2] of producing H2 is from hydrocarbons (oil/gas products). In principle H2 can be produced from something else (e.g. water, through electrolysis), but that is very energy intensive [1], making the overall reaction N2 + 3 H2O -> 2 NH3 + 3/2 O2 a net energy consumer.
Point being, yes, it might be possible to save energy compared to the Haber-Bosch process, but the net production of ammonia from free/abundant materials will not ever be "for free" energy-wise.
[1] https://en.wikipedia.org/wiki/Standard_enthalpy_of_formation [2] https://en.wikipedia.org/wiki/Hydrogen_production