Oxford · 1997

Shadow Photons

Sodium light through two double slits, one above the other, with slits of different widths
Sodium light through two double slits, one above the other, with slits of different widthsPhotograph by Pieter Kuiper, 2010

Back to the two slits of Young’s day, with one change: since Dirac’s, experiments have sent photons through them one at a time. Each lands as a single spot, yet after thousands, the spots build up Young’s stripes all the same. In his book The Fabric of Reality, British physicist David Deutsch, at Oxford, asks what that means.

Open two more slits, interleaved with the first two, and the stripes spread farther apart; some places that photons used to reach now get none at all. Something coming through the other slits must be stopping each photon from going there – something we can’t see, which shows up only in these interference patterns. Deutsch calls these “shadow photons,” and the ones we see “tangible photons.” For every photon we see, there must be at least a trillion we don’t see.

Photons from a laser, sent one at a time through slits, land as single dots that build up stripes; with two more slits open, five stripes are reduced to three, with large gaps in between Laser Slits Screen Frequency Not to scale

Photons sent one at a time each land as a single dot. Over time, the dots pile up and form stripes; each dot fades after a few seconds, so the screen shows only the latest photons. Open two more slits, and five stripes are reduced to three, with large gaps in between. Electrons and molecules do the same.

Photons aren’t special. Electrons sent one at a time build up the same stripes, as the Japanese physicist Akira Tonomura’s team shows in 1989, and in 2019, molecules of some 2,000 atoms interfere too. So every kind of particle has its shadow counterparts, and they act on each other as the ones we see do: they make up a huge number of universes like ours, which affect each other only weakly, through interference. Nor is any of them special: each photon is tangible in its own universe and a shadow in all the others. Reality is a multiverse, as Everett’s theory says.

Today, quantum theory has passed every test put to it, yet the multiverse is still a minority view among physicists. Many hold that the theory only predicts what we’ll observe. That leaves them Deutsch’s question: if not shadow photons, what keeps the photons from those places?

Revision of #5828 by David Deutsch​·​#5835​·​Compare with #5833

Reality is a multiverse, as Everett’s theory says, and single-particle interference shows it. Photons sent through slits one at a time stop reaching some places when more slits are open, so something coming through the other slits interferes with them: shadow photons, which are the photons of other universes. Every kind of particle has such counterparts, and they make up a huge number of universes like ours.

The state of the discussion

Deutsch’s multiverse builds on Everett’s many worlds and faces no pending criticisms, so the discussion stands on it today. Maxwell’s electromagnetic waves and Newton’s particles of light still have two pending criticisms each.

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Sources:

  • Deutsch, The Fabric of Reality (London, 1997), chapter 2, “Shadows”
  • Tonomura et al., “Demonstration of Single-Electron Buildup of an Interference Pattern”, American Journal of Physics 57 (1989), 117–120
  • Fein et al., “Quantum Superposition of Molecules beyond 25 kDa”, Nature Physics 15 (2019), 1242–1245

Researched and written with the help of AI, from the sources named. AI can make mistakes. Veritula doesn’t claim perfect historical accuracy; the sources are there to check against.

The full discussion

Wave or Particle? How Light Outgrew Both

Dennis Hackethal started this discussion 1 day ago.

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Huygens said light is a wave, Newton that it’s a stream of particles. Both were wrong, and working out what light really is showed that our universe is one of many.


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The discussion as it was in 1997. Chronicle discussions are read-only. Jump to the present
Christiaan Huygens’s avatar
Christiaan HuygensHistorical profile​·​#5826​·​1865​·​AI-assisted

Light is a wave of electric and magnetic forces, traveling through space at the speed my equations give for such waves, about 310,000 kilometers a second. Radiant heat, and any other radiation like it, must be such a wave too.

Criticized2
Albert Einstein’s avatar
Albert EinsteinHistorical profile​·​#5829​·​1905​·​AI-assisted

Lenard found that brighter light knocks more electrons out of a metal, but not faster ones. A spreading wave would shake the electrons harder the brighter it is, and send them out faster.

Criticism of #5826
Arthur Compton’s avatar
Arthur ComptonHistorical profile​·​#5831​·​1923​·​AI-assisted

X-rays bounced off electrons come back with longer waves, the longer the more sharply they’re deflected. A wave would come back with its wavelength unchanged. The shift is just what it should be if each quantum collides with a single electron, like one billiard ball with another.

Criticism of #5826
Isaac Newton’s avatar
Isaac NewtonHistorical profile​·​#5819​·​1706​·​AI-assisted

Light is a stream of tiny particles thrown off by shining things. They fly in straight lines, which is why shadows are sharp. Glass and water pull them in as they enter, which bends their path and speeds them up.

Criticized2
Thomas Young’s avatar
Thomas YoungHistorical profile​·​#5821​·​November 24, 1803​·​AI-assisted

Light added to light can make darkness. Hold a thin card in a narrow beam of light, and bright and dark stripes appear in its shadow; block the light passing one side of it, and they vanish. Waves can cancel each other out. Streams of particles can’t.

Criticism of #5819
Léon Foucault’s avatar
Léon FoucaultHistorical profile​·​#5825​·​May 6, 1850​·​AI-assisted

Light travels more slowly through water than through air: measured with a spinning mirror, the light that went through water comes back later. Newton’s particles, pulled into the water, would travel faster there.

Criticism of #5819
Albert Einstein’s avatar
Albert EinsteinHistorical profile​·​#5835​·​1997​·​AI-assisted
4th of 4 versions​·​revised by David DeutschHistorical profile

Reality is a multiverse, as Everett’s theory says, and single-particle interference shows it. Photons sent through slits one at a time stop reaching some places when more slits are open, so something coming through the other slits interferes with them: shadow photons, which are the photons of other universes. Every kind of particle has such counterparts, and they make up a huge number of universes like ours.

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