Watt-hours per kg, and watt-hours per liter.
And with all solid state, have they solved scaling production beyond a small demonstration cell? It is now a known investment "con" to create a solid state cell that appears to kick the tar out of conventional cells and then try to get funded to "solve production". I lost count of how many companies were doing this.
This is an embarrassing article from an engineering organization website.
What appears to be happening is that solid state will simply be a distraction technology. Sulfur chemistries (medium/long term) and prosaic unsexy LFP and sodium ion (short term) will drive the true revolution in electrification of transportation and grid storage.
Solid state may produce usable use cases around laptops / phones / etc at some point, and who knows, solid state sulfur may become a thing eventually, but what's really needed from batteries now is scale and cost.
The 200 wh/kg LFP (230+ on the roadmap/12-24 months away!) and 150 wh/kg sodium ion (180-200 wh/kg on roadmap) going into mass production are the big revolution in batteries. That is a non-cobalt/nickel LFP battery that can do 400 mile cars, and a sodium ion battery that should drop to 40$/kwh costs that can do a 300 mile car, and the roadmap should further upgrade/cheapen those chemistries.
The 150 wh/kg sodium ion battery should mean 250-350 mile range city cars that are significantly cheaper than ICE drivetrains can achieve. It is tranportation for 3-4 billion people that won't use fossil fuels.
LFP should eventually be able to do the medium range electric semi truck. Sulfur chemistries should enable or better a long haul semi, but sulfur chems are probably 8-12 years from mass production (I really hope I'm wrong and it is sooner though)