A 189 Year Old Limitation on Inductor Size Has Been Broken (2018)
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Re: A 189 Year Old Limitation on Inductor Size Has Been Broken (2018)
#2Re: A 189 Year Old Limitation on Inductor Size Has Been Broken (2018)
#3This seems like an interesting development, but the performance gain appears to be limited to low value inductors in the 10's of GHz range. Those inductors are already very small and easily integrated on RF ICs.
If you want to miniaturize electronics you need to miniaturize the inductors used in power conversion, which typically operate in the KHz to low MHz range. It's a very different problem.
Re: A 189 Year Old Limitation on Inductor Size Has Been Broken (2018)
#4I imagine this has some use cases that would merit the higher cost (graphene is expensive, right?). But probably not many.
Re: A 189 Year Old Limitation on Inductor Size Has Been Broken (2018)
#5It mentions 50 percent greater inductance than a a regular coil. Which is great, but would only reduce the size by a third. I imagine this has some use cases that would merit the higher cost (graphene is expensive, right?). But probably not many.
Re: A 189 Year Old Limitation on Inductor Size Has Been Broken (2018)
#6What medium is paid access now? Do they pay the content creators?
Re: A 189 Year Old Limitation on Inductor Size Has Been Broken (2018)
#7What medium is paid access now? Do they pay the content creators?
Re: A 189 Year Old Limitation on Inductor Size Has Been Broken (2018)
#8The medium article links to a nature article which explains in depth: https://www.nature.com/articles/s41928-017-0010-z This seems like an interesting development, but the performance gain appears to be limited to low value inductors in the 10's of GHz range. Those inductors are already very small and easily integrated on RF ICs. If you want to miniaturize electronics you need to miniaturize the inductors used in pow…
Re: A 189 Year Old Limitation on Inductor Size Has Been Broken (2018)
#9The medium article links to a nature article which explains in depth: https://www.nature.com/articles/s41928-017-0010-z This seems like an interesting development, but the performance gain appears to be limited to low value inductors in the 10's of GHz range. Those inductors are already very small and easily integrated on RF ICs. If you want to miniaturize electronics you need to miniaturize the inductors used in pow…
But it's a good start, no? And the theory has been proven as sound. I'm guessing/hoping they'll target the higher ranges soon.
To make it useful for power electronics they would have to push out this time constant by at least 4 orders of magnitude, I don't believe the theoretical material properties support that.
You might see this shaving off a few mm^2 from RF ICs and providing better RF performance. Applications in power electronics, where inductors take up the most volume, seems unlikely.