Re: IBM - New SUB-Nanometer STACKED Chip
c186282 <[email protected]> Wed, 1 Jul 2026 03:29:06 -0400
| Newsgroups | comp.os.linux.misc,alt.comp.hardware.pc-homebuilt |
|---|---|
| Organization | wokiesux |
| Message-ID | <[email protected]> |
On 6/30/26 22:09, Paul wrote: > On Tue, 6/30/2026 12:06 PM, c186282 wrote: >> On 6/30/26 09:51, Mr. Man-wai Chang wrote: >>> On 6/30/2026 5:14 PM, c186282 wrote: >>>>> >>>>> Can you fabricate 0.000000...0000000001 nm chips? >>>>> >>>>> Is zero the seal or wall? :) >>>> >>>> Um, pretty quick you get to ATOMS ... and, for any >>>> normal electronics, that's IT. >>> >>> >>> You cannot have 0.000000....00 nm chip. >>> >>> That's a void, empty, nothing. :) >> >> "Electronics" are now about literal atom-thick structures. >> Can't go any smaller. >> >> Any better future stuff will have to exploit quantum >> effects - get more bang for yer nanometer. Alas quantum >> stuff isn't as deterministic as bulk matter devices >> and suffer from the uncertainty principle. > > But only if there are properties that actually have some use. True. There do seem to be SOME uses - but "general utility" is not so clear. > A quick Google tells me there is a thing called "spintronics" > which can make insulators. The materials are "foreign" to > current semiconductors (so the materials may not "play nice" > with the rest of the substrate). And having an insulator, > does not give me a switching transistor. Umm, no. "SpinTronics" may have uses - but, as you said, it does not segway neatly with existing tech. (fun - my spell-checker thing wants "Segway" - the two-wheeled commercial thingie :-) There are all sorts of exotic potential tech - weird probability waves spreading over 2-D surfaces and such. Can they be made into USEFUL technologies ? Maybe 10% and only for specialized uses. Existing transistor tech - it's deterministic, solid. Alas with the IBM product we've probably reached the bitter END of conventional electronics. Some seriously different stuff will be needed for The Future if we need more speed/density. > Historically, we've made good use of quantum mechanical "tunneling", > which is finding a way underneath energy barriers. We have one > afternoon lab using one of these (these diodes are used in > time domain reflectometry for the nice sharp edges). I put mine right > across the terminals of an HP gray-plastic power supply, the one with > the course and fine controls. And you can use the power supply > as a curve tracer, and walk the diode right up to the > point where it switches. The power supply has amazing > characteristics at DC (not so much at HF). And that was > a fun afternoon of farting around. > > https://en.wikipedia.org/wiki/Tunnel_diode > > And that's an illustration of an effect, it's not me predicting > they'll run right out and make something out of that. > > This is another example of tunneling. > > https://en.wikipedia.org/wiki/Flash_memory#Fowler%E2%80%93Nordheim_tunneling > > "The Fowler-Nordheim tunneling effect is reversible, so electrons > can be added to or removed from the floating gate, processes > traditionally known as writing and erasing." > > There's no uncertainty principle there, you need enough electrons > to maintain noise immunity. NO longer sure if you go below 1nm alas. > If there is some property that can be used, and is not a flaky pastry, > then it will be introduced slowly. There is too much money involved > for this to be just "science", it's "business" too. And that affects > how you do it. Expect a LOT of flaky pastries in short order. One or two will be useful/do-able. The rest ....