Earlier quoted context omitted.
These sound a lot like room temperature optical qubits... I'm certain I am missing something but this sounds pretty neat.
they aren't quantum
New Optical Switch Up to 1000x Faster Than Transistors
21–30 of 94 posts
Re: New Optical Switch Up to 1000x Faster Than Transistors
#22In reality, all-optical computing is mostly a terrible idea: fundamentally, it cannot reach the integration density of electronics. It boils down to the elementary differences between Fermions (electrons, neutrons, etc.) and Bosons (photons, etc.). Their intrinsic behavior determines the interaction with matter, i.e. conductive/absorptive properties. As a result, optical wires (waveguides) have to be sized roughly at…
Isn't this just a trade off? Is there never a scenario where you would trade transistor density for switching speed and lower power consumption?
Another benefit of lower density is cooling.
Re: New Optical Switch Up to 1000x Faster Than Transistors
#23In reality, all-optical computing is mostly a terrible idea: fundamentally, it cannot reach the integration density of electronics. It boils down to the elementary differences between Fermions (electrons, neutrons, etc.) and Bosons (photons, etc.). Their intrinsic behavior determines the interaction with matter, i.e. conductive/absorptive properties. As a result, optical wires (waveguides) have to be sized roughly at…
You can just choose to use light at a smaller wavelength.
Also, less density by itself doesn't mean less performance, the larger optical components can just run faster to end up with higher overal performance.
Re: New Optical Switch Up to 1000x Faster Than Transistors
#24In reality, all-optical computing is mostly a terrible idea: fundamentally, it cannot reach the integration density of electronics. It boils down to the elementary differences between Fermions (electrons, neutrons, etc.) and Bosons (photons, etc.). Their intrinsic behavior determines the interaction with matter, i.e. conductive/absorptive properties. As a result, optical wires (waveguides) have to be sized roughly at…
Re: New Optical Switch Up to 1000x Faster Than Transistors
#25In reality, all-optical computing is mostly a terrible idea: fundamentally, it cannot reach the integration density of electronics. It boils down to the elementary differences between Fermions (electrons, neutrons, etc.) and Bosons (photons, etc.). Their intrinsic behavior determines the interaction with matter, i.e. conductive/absorptive properties. As a result, optical wires (waveguides) have to be sized roughly at…
That argument doesn't make sense to me. You can just choose to use light at a smaller wavelength. Also, less density by itself doesn't mean less performance, the larger optical components can just run faster to end up with higher overal performance.
Re: New Optical Switch Up to 1000x Faster Than Transistors
#26In reality, all-optical computing is mostly a terrible idea: fundamentally, it cannot reach the integration density of electronics. It boils down to the elementary differences between Fermions (electrons, neutrons, etc.) and Bosons (photons, etc.). Their intrinsic behavior determines the interaction with matter, i.e. conductive/absorptive properties. As a result, optical wires (waveguides) have to be sized roughly at…
Re: New Optical Switch Up to 1000x Faster Than Transistors
#27Re: New Optical Switch Up to 1000x Faster Than Transistors
#28Re: New Optical Switch Up to 1000x Faster Than Transistors
#29In reality, all-optical computing is mostly a terrible idea: fundamentally, it cannot reach the integration density of electronics. It boils down to the elementary differences between Fermions (electrons, neutrons, etc.) and Bosons (photons, etc.). Their intrinsic behavior determines the interaction with matter, i.e. conductive/absorptive properties. As a result, optical wires (waveguides) have to be sized roughly at…
Isn't this just a trade off? Is there never a scenario where you would trade transistor density for switching speed and lower power consumption?
However, all-optical/photonic computing is just intrinsically so much worse than electronics. On top of the issues that I touched on, there are also other fundamental problems, e.g. distribution of power: photons like to get absorbed by nearby electrons. How do you then supply all the active devices (switches/lasers/etc.) with power while maintaining some semblance of signal integrity and dense integration?
Re: New Optical Switch Up to 1000x Faster Than Transistors
#30In reality, all-optical computing is mostly a terrible idea: fundamentally, it cannot reach the integration density of electronics. It boils down to the elementary differences between Fermions (electrons, neutrons, etc.) and Bosons (photons, etc.). Their intrinsic behavior determines the interaction with matter, i.e. conductive/absorptive properties. As a result, optical wires (waveguides) have to be sized roughly at…
You can't directly compare optical and electrical compute through looking at the difference in feature densities. Optical compute will most likely take the form of analog waveforms that contain many bits of information, whereas electronics for computing is inherently binary.
- MLC flash storage devices use multiple levels to store/retrieve bits [1], - Lots of control systems are implemented with analog PIDs [2]. A trivial example is a jellybean voltage regulator that computes the adjustments needed to maintain a stable output voltage independent of the load.
[1] https://en.wikipedia.org/wiki/Multi-level_cell [2] https://control.com/textbook/closed-loop-control/analog-elec...