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Don Lincoln: observation

29 May 2026 Lex Fridman Podcast #497 – Biggest Mysteries in Physics: Antimatter, Dark Energy & ToE – Don Lincoln

“There was a problem, however, and the problem is that electromagnetism has an infinite range and we know that because we can see stars that are millions of light-years away.”

— Don Lincoln

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Speaker
Don Lincoln
Attribution
Verified speaker
Claim type
observation
Recorded
29 May 2026
Publisher
Lex Fridman Podcast

Transcript context

…… These two forces were merged into a single electroweak force. Right, and that was in ’67, all right? Everybody talks about this thing happening in ’64, but it really wasn’t. It happened over quite a few years actually. But all right, so now let’s— what you said is true. So Weinberg, Glashow, and Salam showed that electromagnetism and the weak force at high energies were the same. There was a problem, however, and the problem is that electromagnetism has an infinite range and we know that because we can see stars that are millions of light-years away. I mean, that shows you that the range of that force is essentially infinite. The weak force, however, basically becomes nonexistent on distances much smaller than the size of a proton. So that, you know, to say, “Oh, they’re the same,” and yet one can reach across the universe and one can’t reach out of an atom, well, that’s just dumb. I mean, the obvious thought here is, well, we just proved that that whole idea is stupid, so throw it away. Ridiculous. And that is where these ideas from 1964 came in and saved the day. So how can it be true that the electroweak force is real and electromagnetism and the weak force act so differently? The way that could happen is if these forces were transmitted by a particle moving from one subatomic particle to the other. In the case of electromagnetism, it’s the photon. In the case of the weak force, we call them now the W and Z particles. So the idea is that Higgs and his colleagues came up with is saying, “All right, electroweak force is real. The way we make it so that there is now an electromagnetic force and a weak force is the force-carrying particle of electromagnetism has no mass. The force-carrying particle of the weak force has a mass.” And so what was done is a field was postulated that there was this additional field that was kind of distinct from this electroweak field, and we call it the Higgs field. And the Higgs field permeates all of space. And here’s the kicker, some particles interact with the field, and some particles don’t interact with the field. The ones that interact with the field get mass, and the ones that don’t interact with the field don’t have mass. And so that’s the idea, is that the Higgs field gives the weak force particles mass. However, the photon laughs at the Higgs field, doesn’t see it, and it has no mass. And I should say here, going to Perplexity, the big-picture view, the Higgs field is the quantum field that fills all of space and gives many elementary particles, just as you’re saying, their mass through their interaction with it. The Higgs boson is the particle associated with ripples or excitations of this field. In modern particle physics, every type of particle corresponds to a field that exists everywhere. The Higgs field is one such scalar field, meaning at each point in space, it has a single numerical value rather than a direction. The Higgs field differs from most other fields because even in empty space—empty in quotes, by the way, empty space—its average value is not zero. This non-zero vacuum value is what enables it to endow particles with mass.…

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