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You're assuming that it takes less than 13 cents / kg to extract that lithium.
by ppf 5y ago
You're assuming that it takes less than 13 cents / kg to extract that lithium.
- kragen 5y agoYes, 13 cents per kg of dead batteries, working out to US$7.30 per kg of lithium. Actually, though, I see a major error in my calculations. What cost US$13000/tonne in 02019 wasn't lithium; it was battery-grade lithium carbonate. The molar mass of Li₂CO₃ is 73.9 (amu); lithium itself is only 13.9 amu of that, or 18%. So that's US$69000/tonne for the lithium itself, 5.5¢ per battery, and US$1.23/kg for used batteries. In 02015 the price was only US$6500 per tonne of lithium carbonate and thus US$35000 per tonne of lithium. Most of that was being extracted from deposits like the ones mentioned above: 0.05% lithium mixed in with 99.95% water and other things. I don't think lithium extraction technology has gotten worse since 02015 (maybe it's gotten better, but probably not worse) so I think that's a reasonable upper bound to the cost of refining lithium from such dilute deposits: US$35000 per tonne, US$35/kg. But, as I said, the batteries represent a deposit that is 35 times more concentrated than the natural deposits currently being mined. That means that it will be much cheaper to refine lithium from batteries than from the natural deposits, although of course the chemistry of the process will be different. The revised numbers, then, are that old batteries contain US$1.23/kg of lithium (US$1230/tonne); so, if you spend 50¢/kg (US$500/tonne) to buy the old batteries, you can spend 73¢ per kg of batteries to refine the lithium, yielding 18 g of lithium. In 02015 miners were getting paid 63¢ to refine 18 g of lithium from natural deposits, so I don't know if it'll actually cost 50¢ or 5¢ or 0.5¢ to do that same refining from batteries, but it won't be 73¢. Except at first, because it'll be chemistry Ph.D.s refining lithium a gram at a time at a lab bench, and it will cost US$1000 per gram. But then you gradually scale up the process.
- ppf 5y ago>Yes, 13 cents per kg of dead batteries, working out to US$7.30 per kg of lithium. Your original comment said there was "23¢/kg of lithium" in waste batteries. Concentration of lithium is not the only concern, and as you point out, we barely have a way to achieve this at any cost. If we're allowed to invoke future technology to solve this, then I'm going to continue driving my ICE car, because soon we will solve the problem of mass CO2 capture.
- kragen 5y ago> Your original comment said there was "23¢/kg of lithium" in waste batteries. Yes. Is that unclear? I will try to clarify it further: my erroneous calculation was that each kilogram of batteries contained 23¢ worth of lithium, using a lithium price of US$13 per kilogram and a figure of 18 g/kg of lithium content. That would have meant that if you spent 10¢ per kg of dead batteries, you could spend 13¢ per kg of dead batteries refining the lithium from them before you ate up your profits, which would have been US$7.30 per kg of lithium produced. The corrected figures are US$1.23, US$69 (for 02019), and still 18 g/kg; if we use 50¢ we then derive 73¢ and US$41 per kg of lithium. Does that help? > Concentration of lithium is not the only concern The usual term is "purity"—and purity of lithium is generally the only concern to the lithium buyer, apart from cost. > we barely have a way to achieve this at any cost On the contrary, the current way we have to achieve this is so incredibly cheap that an 18650 lithium-ion cell that sells for US$3 only contains 5.5¢ worth of lithium. If the price of lithium increased 1000% it would only increase the battery cost by 15%. > If we're allowed to invoke future technology to solve this What you are describing as "future technology" I think is probably more like "grinding up a bunch of dead batteries in a tank of water and then leaching the lithium out with some leachants". There are dozens of papers in the field that have demonstrated feasible methods; one of the simplest, from 10 years ago, used 1M sulfuric acid and 30% H₂O₂ for 2 hours at 80° with a 40% suspension of solids to leach out the cobalt (at which point drain cleaner suffices to get the lithium, I think), and another used 2M citric acid, 1.2% H₂O₂, and 60° temperature, with a 3% suspension of solids. These are processes Berzelius could have designed. There's serious engineering work to be done, but there's no risk that it will turn out to be unprofitably hard, just because dead batteries are such a rich lithium ore. > If we're allowed to invoke future technology to solve this, then I'm going to continue driving my ICE car, soon we will solve the problem of mass CO2 capture. This is precisely the opposite extreme. Dead batteries are 1.8% lithium. Mined lithium brines are 0.01% to 0.2% lithium, so they're worse. When you drive your car, you mix the resulting CO₂ into the entire atmosphere, which weighs 5.15 × 10¹⁸ kg. (And into some of the oceans, too.) If you drive your car 501000 km, you've added 128 tonnes to the atmosphere. That's 0.0000000000025%. The whole CO₂ content of the atmosphere is only 0.04%. Atmospheric carbon capture is a very difficult problem precisely because of the very low concentration of CO₂ you're trying to purify. I do think it's feasible, especially once the massive new solar energy plants come online in the 02030s, but it's pretty far in the opposite direction along the difficulty gradient from battery recycling. Also, it's unprofitable (it provides a public good), and battery recycling is profitable. Lithium mining from batteries is easier than lithium mining from the ground because the concentration is higher. Atmospheric carbon capture is harder than lithium mining from the ground because no financing structure exists for it and because the concentration is lower. (Or maybe the olivine stuff will pan out, I don't know. Serpentinized olivine wouldn't be very pure CO₂ but it also wouldn't be acidifying the oceans and melting the glaciers.)