> This cell achieved an efficiency of 41.1% operating at a power density of 2.39 W cm–2 and an emitter temperature of 2,400 C. At those temperatures, this is not very impressive.
For those of us unfamiliar with the properties of these materials, what would be considered impressive? Are there examples that are better?
US startup begins producing 40%-efficient thermophotovoltaic cells
21–30 of 174 posts
Re: US startup begins producing 40%-efficient thermophotovoltaic cells
#22Could this be used to create a nuclear power generator without moving parts? Some radioactive material in the center, some coating to absorb the radiation, and a shell of these cells to generate electricity.
Are there already solid state ones that use the heat from radioactive decay and the Peltier principle? I assume your idea, if feasible, might be more efficient?
Re: US startup begins producing 40%-efficient thermophotovoltaic cells
#23Earlier quoted context omitted.
Could you elaborate on your last sentence? My naïve assumption was that theoretically the closer to 100% you could get the better, though for some applications you might take a cheaper and lower efficiency panel if it could consistently provide more than the required energy needs. With a storage system, you can just keep adding more storage to soak up higher conversion efficiencies. What am I missing? Why does 40% ma…
Because utility-scale batteries are around 86% round trip efficiency. Pumped storage is around 79%. 40% as a conversion efficiency alone isn't good. That's not a round-trip value; heat loss in storage has to be considered, too.
Re: US startup begins producing 40%-efficient thermophotovoltaic cells
#24Earlier quoted context omitted.
> Why the moon, and what does that have to do with regular photovoltaic efficiency? Presumably to produce energy at night and avoid the need for storage. Seems like a moonshot, though.
But not with these cells? Not getting it :( Or why does (any) storage thing become only interesting then?
All around, confusing. I didn't even know we had such a thing.
Re: US startup begins producing 40%-efficient thermophotovoltaic cells
#25Could this be used to create a nuclear power generator without moving parts? Some radioactive material in the center, some coating to absorb the radiation, and a shell of these cells to generate electricity.
Re: US startup begins producing 40%-efficient thermophotovoltaic cells
#26Earlier quoted context omitted.
Are there already solid state ones that use the heat from radioactive decay and the Peltier principle? I assume your idea, if feasible, might be more efficient?
Yes they exist, though I don't think they are Peltier devices: https://en.wikipedia.org/wiki/Radioisotope_thermoelectric_ge...
And its spaceflight cousin: https://www.projectrho.com/public_html/rocket/enginelist2.ph...
Though they are not peltier devices either.
Re: US startup begins producing 40%-efficient thermophotovoltaic cells
#27Could this be used to create a nuclear power generator without moving parts? Some radioactive material in the center, some coating to absorb the radiation, and a shell of these cells to generate electricity.
Re: US startup begins producing 40%-efficient thermophotovoltaic cells
#28Earlier quoted context omitted.
For those of us unfamiliar with the properties of these materials, what would be considered impressive? Are there examples that are better?
If you have a heat source with a temperature of 2500C, then the theoretical maximum efficiency of conversion is around 89% assuming you have a heat sink available that can stay below 30C. (1.0 - (30+273)/(2500+273) = 0.89). All heat engines will be worse than this because of practicalities, but a real steam turbine system can be around 47% efficient and a combined cycle can be 60% efficient, using a cooler "hot" end…
[1]: https://en.wikipedia.org/wiki/Shockley%E2%80%93Queisser_limi...
[2]: https://en.wikipedia.org/wiki/Solar-cell_efficiency#Factors_...
Re: US startup begins producing 40%-efficient thermophotovoltaic cells
#29Earlier quoted context omitted.
Because utility-scale batteries are around 86% round trip efficiency. Pumped storage is around 79%. 40% as a conversion efficiency alone isn't good. That's not a round-trip value; heat loss in storage has to be considered, too.
In a heat-based system couldn't you use more cells to absorb remaining heat?
TLDR: Adding more cells won’t help due to economics, geometry, and fundamental laws of physics.
Re: US startup begins producing 40%-efficient thermophotovoltaic cells
#30Earlier quoted context omitted.
it's the temperature of light emitter, not of the panel it's pretty much saying "efficient (for a photovoltaic) electricity from powerful infrared" Sun is 6000 degrees, so most of its emergy is in different frequency Instead, this panel is planned to be used in thermal batteries, I think the article says. I guess main competition is steam turbine or smth?
FWIW when we say "a light at 6000 K" it means "a light with the same color as a black body heated to 6000 Kelvin", so it has nothing to do with temperature, it's only a (veery rough) way of characterizing color.
Go figure.