{"id":738602,"date":"2026-06-15T16:21:07","date_gmt":"2026-06-15T16:21:07","guid":{"rendered":"https:\/\/www.newsbeep.com\/ca\/738602\/"},"modified":"2026-06-15T16:21:07","modified_gmt":"2026-06-15T16:21:07","slug":"how-many-elementary-particles-are-there-really","status":"publish","type":"post","link":"https:\/\/www.newsbeep.com\/ca\/738602\/","title":{"rendered":"How Many Elementary Particles Are There, Really?"},"content":{"rendered":"<p><img loading=\"lazy\" decoding=\"async\" class=\"alignnone wp-image-158268 size-medium\" src=\"https:\/\/www.newsbeep.com\/ca\/wp-content\/uploads\/2026\/03\/QUALIA-Banner-WITH-SPACER-1-1720x223.webp.webp\" alt=\"Qualia: Essays that go where curiosity leads\" width=\"1720\" height=\"223\"  \/><\/p>\n<p>Every time I write about particle physics, I encounter a moment of uncertainty about a quantity that, at first glance, ought to be clear. How many kinds of elementary particles should I say there are?<\/p>\n<p>In experiments at the Large Hadron Collider, physicists smash together beams of protons, breaking them up into all possible elementary bits and pieces. Meanwhile, they have an incredibly accurate set of mathematical equations for describing these building blocks and all the ways they fit together. So, since the known particles of nature can be both empirically observed and theoretically described, you would think they could also be counted. But alas not. I knew that, for reasons we\u2019ll see, the census is not so easy as it seems.<\/p>\n<p>So I recently emailed a few physicists to ask how each of them personally tallies nature\u2019s fundamental constituents. The first indicator of just how complicated the issue is came in a reply from <a href=\"https:\/\/davidtong.org\/\" rel=\"nofollow noopener\" target=\"_blank\">David Tong<\/a>, the University of Cambridge physicist and textbook author, when we were scheduling a video call: \u201cP.S. I think the true answer to your question is not an integer!\u201d<\/p>\n<p>In philosophy, \u201cqualia\u201d refers to the subjective qualities of our experience: what it\u2019s like for Alice to see blue or for Bob to feel delighted. Qualia are \u201cthe ways things seem to us,\u201d as the late philosopher Daniel Dennett put it. In these essays, our columnists follow their curiosity, and explore important but not necessarily answerable scientific questions.<\/p>\n<p>We\u2019ll get to that (it comes from <a href=\"https:\/\/arxiv.org\/abs\/1107.3987\" rel=\"nofollow noopener\" target=\"_blank\">a mysterious calculation from 2011<\/a>), but let\u2019s enter this rabbit hole from the top.<\/p>\n<p>The known elementary particles and their interactions obey a set of equations called <a href=\"https:\/\/www.quantamagazine.org\/a-new-map-of-the-standard-model-of-particle-physics-20201022\/\" rel=\"nofollow noopener\" target=\"_blank\">the Standard Model of particle physics<\/a>. The Standard Model is a \u201cquantum field theory,\u201d a mathematical description of reality in which entities called quantum fields permeate the universe. Ripples moving through these fields are what we call elementary particles; some behave like matter, while others impart forces. The quantum fields and associated particles in the Standard Model underlie all known physical phenomena other than gravity, dark matter, and dark energy (all of which take unknown forms at a fundamental level).<\/p>\n<p>In posters on classroom walls, the Standard Model displays 17 particles. There are 12 matter particles, or fermions: the electron, muon, and tau; three neutrinos; and six quarks. Each of them has a distinct set of sensitivities to various forces. There are also four force-carrying particles, or \u201cbosons\u201d: the photon (which imparts the electromagnetic force), the W and Z bosons (the weak force), and the gluon (the strong force). Finally, there\u2019s the Higgs boson, a so-called scalar particle that\u2019s neither matter nor force; rather, it imbues other particles with mass through its interactions with them.<\/p>\n<p>        <img src=\"https:\/\/www.quantamagazine.org\/wp-content\/uploads\/2026\/06\/SM_graphic-FINAL.svg\" class=\"block fit-x fill-h fill-v is-loaded mxa\" alt=\"\" decoding=\"async\"\/>    <\/p>\n<p>Samuel Velasco\/Quanta Magazine<\/p>\n<p>It may just be this simple. \u201cI think 17 is the right answer,\u201d <a href=\"https:\/\/www.physics.harvard.edu\/people\/facpages\/franklin\" rel=\"nofollow noopener\" target=\"_blank\">Melissa Franklin<\/a>, a professor of particle physics at Harvard University, told me.<\/p>\n<p>But every particle physicist, Franklin included, recognizes that there are caveats.<\/p>\n<p>From 17, you can keep counting. Where you stop depends on your taste for complexity and mystery. The question of how many particles there are brings us to the edge of what\u2019s known about the most basic levels of stuff.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"alignnone size-full wp-image-158196\" src=\"https:\/\/www.newsbeep.com\/ca\/wp-content\/uploads\/2026\/03\/QUALIA-Separator-2.webp.webp\" alt=\"\" width=\"1300\" height=\"43\"  \/><\/p>\n<p>There is one glaring problem with 17. To satisfy special relativity, each of the Standard Model\u2019s matter fields supports both a particle and an \u201cantiparticle,\u201d which is identical to the particle except for having the opposite electric charge. This is what we popularly know as antimatter. So instead of 12 matter particles, there are really 24. Likewise, W bosons come in oppositely charged types known as W+ and W\u2212. (This doesn\u2019t happen to the Z bosons, photons, or gluons; they\u2019re electrically neutral.)<\/p>\n<p>        <img loading=\"lazy\" width=\"1400\" height=\"1176\" src=\"https:\/\/www.newsbeep.com\/ca\/wp-content\/uploads\/2026\/06\/ElementaryParticles-Spot-01.jpg\" class=\"block fit-x fill-h fill-v is-loaded mxa s:hidden m:hidden\" alt=\"\" decoding=\"async\"  \/><img loading=\"lazy\" width=\"1400\" height=\"705\" src=\"https:\/\/www.newsbeep.com\/ca\/wp-content\/uploads\/2026\/06\/ElementaryParticles-Spot-01-mobile.jpg\" class=\"block fit-x fill-h fill-v is-loaded mxa l:hidden\" alt=\"\" decoding=\"async\"  \/>    <\/p>\n<p>Franklin excludes antiparticles from her census, she said, because mathematically they more or less mirror their particle versions. (Bizarrely, antiparticles are equivalent to particles moving backward in time, and vice versa.) Neither is possible without the other, so they shouldn\u2019t be counted twice.<\/p>\n<p>But I find that rationale unconvincing. Particles and antiparticles are undeniably distinct, even if they are secret twins. They can\u2019t transform into each other (with the possible exception of neutrinos, which may or may not be their own antiparticles), and far from being functionally equivalent, they play totally different roles in reality. Matter is so dominant in our universe that any antimatter typically encounters matter quickly and annihilates. The reason for the cosmos\u2019s matter-antimatter asymmetry is a major physics mystery.<\/p>\n<p>Antiparticles bring the total up to 30.<\/p>\n<p>But the notion that there\u2019s only one gluon is another oversimplification. Really, the strong force is conveyed by eight gluons (and their associated fields), each possessing a distinct blend of charges known as \u201ccolors\u201d and \u201canticolors.\u201d The different gluons are impossible to distinguish experimentally, so Franklin, being an experimentalist, scoffed and shook her head when I asked if all eight should be tallied individually. Yet in the mathematical equations that define the Standard Model, the eight gluons are distinct from one another in the same way that the W and Z bosons differ. For consistency\u2019s sake, we probably have to count all eight. So now we\u2019re at 37.<\/p>\n<p>From 17, you can keep counting. Where you stop depends on your taste for complexity and mystery.<\/p>\n<p>Quarks come in colors, too \u2014 the three possibilities are dubbed red, green, and blue \u2014 and antiquarks have anticolors, called anti-red, anti-green, and anti-blue. (Don\u2019t try too hard to picture anti-red; these aren\u2019t our familiar optical colors, though they combine in a manner that\u2019s analogous mathematically.) The colors reflect how gluons and quarks interact with each other.<\/p>\n<p>For matter to exist in stable isolation, it must be color-neutral. So, just as red light, green light, and blue light blend to make white, so do red, blue, and green quarks form color-neutral protons and neutrons (the building blocks of atoms).<\/p>\n<p>So there aren\u2019t six quarks and six antiquarks but rather 36 in total. And that makes 61 elementary particles. But there\u2019s more.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"alignnone size-full wp-image-158196\" src=\"https:\/\/www.newsbeep.com\/ca\/wp-content\/uploads\/2026\/03\/QUALIA-Separator-2.webp.webp\" alt=\"\" width=\"1300\" height=\"43\"  \/><\/p>\n<p>Matter particles also come in left-handed and right-handed varieties, a quality known as chirality \u2014 arguably a crucial distinction. \u201cI insist on left- and right-handed particles,\u201d <a href=\"https:\/\/chrisquigg.com\" rel=\"nofollow noopener\" target=\"_blank\">Chris Quigg<\/a>, a senior particle theorist at the Fermi National Accelerator Laboratory, told me. \u201cI can\u2019t account for this. Blame my parents.\u201d (Far more idiosyncratically, Quigg leaves the force-carrying particles off his list, as he considers them to be transformations of matter particles rather than particles themselves.)<\/p>\n<p>Chirality is a quantum version of the handedness that chemists see in molecules or that we see at the ends of our arms. It is not a geometric arrangement like those, but mathematically the two states are mirror images of one another; you can\u2019t rotate one to turn it into the other, any more than you can with left and right hands. The force-carrying particles have an analogous distinction, known as a polarization state. Photons and gluons can be either left- or right-polarized, while the W+, W\u2212, and Z bosons have a third, \u201clongitudinal\u201d polarization state as well. (That extra state has a complicated origin connected to the Higgs field and events during the Big Bang.)<\/p>\n<p>Not everyone counts these different chiral and polarization states as distinct particle types. Yet it\u2019s logical to do so, because they affect how particles behave and interact. The weak force, for example, affects only left-handed matter particles. For related reasons, neutrinos appear only in a left-handed form in the Standard Model. These are physically distinct states with different roles in nature. Counting each chirality and polarization state separately gets us to 118 particles \u2014 from a right-handed, anti-red, anti-charm quark to a green\u2013anti-blue, left-polarized gluon, to a longitudinal W\u2212 boson.<\/p>\n<p>\u201cNow,\u201d Tong said, \u201ccomes the weird stuff.\u201d<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"alignnone size-full wp-image-158196\" src=\"https:\/\/www.newsbeep.com\/ca\/wp-content\/uploads\/2026\/03\/QUALIA-Separator-2.webp.webp\" alt=\"\" width=\"1300\" height=\"43\"  \/><\/p>\n<p>Physicists call all the ways that particles can vary \u201cdegrees of freedom\u201d \u2014 with a different degree of freedom for each state a particle can hold. Color, for example, comprises three degrees of freedom: red, green, and blue. But those differences go beyond the states we have already described. We might consider the tally of all these degrees of freedom as a more precise, mathematical version of the question of how many elementary particles there can be.<\/p>\n<p>        <img loading=\"lazy\" width=\"979\" height=\"1400\" src=\"https:\/\/www.newsbeep.com\/ca\/wp-content\/uploads\/2026\/06\/ElementaryParticles-Spot-07.jpg\" class=\"block fit-x fill-h fill-v is-loaded mxa vertical s:hidden m:hidden\" alt=\"\" decoding=\"async\"  \/><img loading=\"lazy\" width=\"1400\" height=\"539\" src=\"https:\/\/www.newsbeep.com\/ca\/wp-content\/uploads\/2026\/06\/ElementaryParticles-Spot-07-mobile.jpg\" class=\"block fit-x fill-h fill-v is-loaded mxa vertical l:hidden\" alt=\"\" decoding=\"async\"  \/>    <\/p>\n<p>Physicists have long noticed a pattern in the degrees of freedom: The number of them depends on the scale at which you count them. On the scale of our everyday reality, objects are describable with fewer variables than it takes to specify the states of all the microscopic constituents. When you zoom in on, say, a proton, and reveal its constituent quarks with their colors and various other properties, you\u2019ll observe more ways of moving or varying \u2014 more degrees of freedom. This is one of the main reasons it\u2019s so difficult to pin down the particle population. The closer you get, the more their categories splinter.<\/p>\n<p>Furthermore, the beginning of the Big Bang might have abounded with additional, high-energy particles that can\u2019t form in our current, low-energy universe and aren\u2019t part of the Standard Model. For instance, many extensions of the model to the high-energy early universe posit the existence of heavy right-handed neutrinos, but these would never arise now. \u201cAs you go down in energy scale,\u201d Tong said, \u201cyou\u2019re losing particles as you go, because they\u2019re so heavy,\u201d and therefore only possible at much higher energies. \u201cAs you go down in energy scale you lose knowledge of those particles.\u201d If we continue to follow this idea, at very low energies only one particle is left: the photon. Because they\u2019re massless, photons can approach zero energy.<\/p>\n<p>It\u2019s natural to wonder if a full accounting is possible. How many fundamental degrees of freedom are there, including all of those at the very highest energies and most microscopic distances that we can\u2019t possibly detect? This brings us to the fascinating 2011 calculation Tong told me about, by <a href=\"https:\/\/www.weizmann.ac.il\/physics\/prof-adam-schwimmer\" rel=\"nofollow noopener\" target=\"_blank\">Adam Schwimmer<\/a> and <a href=\"https:\/\/scgp.stonybrook.edu\/people\/faculty\/bios\/zohar-komargodski\" rel=\"nofollow noopener\" target=\"_blank\">Zohar Komargodski<\/a>.<\/p>\n<p>Komargodski, a theoretical physicist at Stony Brook University, walked me through it. I just mentioned the trend in which, as we zoom out in the universe, we\u2019re able to detect fewer effective degrees of freedom. In 1989, the physicist <a href=\"https:\/\/www-thphys.physics.ox.ac.uk\/people\/JohnCardy\/\" rel=\"nofollow noopener\" target=\"_blank\">John Cardy<\/a> <a href=\"https:\/\/www.sciencedirect.com\/science\/article\/abs\/pii\/0370269388900548\" rel=\"nofollow noopener\" target=\"_blank\">conjectured<\/a> that this is an inviolable rule that any quantum field theory must follow. The rule had already been mathematically proved true of quantum field theories with one space and one time dimension, which describe particles moving along lines. But what about theories like the Standard Model, which involves three spatial dimensions plus time (called 3 + 1D)?<\/p>\n<p>Schwimmer, an emeritus professor of physics at the Weizmann Institute of Science, and Komargodski <a href=\"https:\/\/arxiv.org\/abs\/1107.3987\" rel=\"nofollow noopener\" target=\"_blank\">proved<\/a> Cardy\u2019s conjecture. Their \u201ca theorem,\u201d acclaimed among quantum field theorists, says that in 3 + 1D quantum field theories, the number of effective degrees of freedom must always decrease as you zoom out. They showed that this is universally true by exploring how quantum fields must respond to gravity tugging on them in four different places.<\/p>\n<p>Their proof also yielded a strange conclusion about how many fundamental degrees of freedom there must be in 3 + 1D quantum field theories such as the Standard Model. Quantum fields, the proof showed, cannot have just any number of variations. To the contrary, only specific values are allowed: Scalar fields such as the Higgs field have just one degree of freedom. Matter fields must each have 5.5 degrees of freedom. And force fields each have 62 degrees of freedom. These figures emerge mathematically, without regard to the specific particle states we\u2019ve been discussing to this point. \u201cAnd nothing else works,\u201d Komargodski said.<\/p>\n<p>\n            The Route to 995.5\n    <\/p>\n<p>Komargodski\u2019s tally started with the quantum fields as they existed before a reshuffling of degrees of freedom in the early moments of the universe, when the Higgs field became energized and imbued particles with mass. Initially, there were four scalar fields (one of which became the present-day Higgs field), 45 fermions (left-handed electrons, muons, tau particles, and their neutrino counterparts; right-handed electrons, muons, and tau particles; and left- and right-handed blue, green, and red quarks of all six types), and 12 force-carrying bosons: eight gluons plus four primordial bosons that subsequently became the W+, W\u2212, Z, and photon. Antimatter isn\u2019t counted separately but rather is included in each fermion field\u2019s 5.5 degrees of freedom. Thus: (4 \u00d7 1) + (45 \u00d7 5.5) + (12 \u00d7 62) = 995.5 degrees of freedom in the Standard Model.<\/p>\n<p>\u201cOne, 5\u00bd, 62 \u2014 they pop out of the theorem,\u201d he added. \u201cI have no idea why this is what nature chose.\u201d<\/p>\n<p>Tong explained that fractional degrees of freedom (like that extra half degree possessed by matter fields) are variations that aren\u2019t fully independent from those of other fields. What\u2019s possible with one particle might depend on the state of another. \u201cYou kick that way, and suddenly all hell breaks loose, and the field is oscillating all over the place,\u201d he said.<\/p>\n<p>So assuming the respective number of degrees of freedom for each scalar, matter, and force field in the Standard Model, how many does that make? Komargodski paused our conversation to ask ChatGPT, providing the relevant numbers, and then checked its work. The answer: 995.5. That\u2019s apparently how many degrees of freedom there are in the Standard Model.<\/p>\n<p>I can\u2019t help but feel flummoxed. And apparently that\u2019s the general reaction.<\/p>\n<p>\u201cUnderlying all of this is the statement that quantum field theory is unbelievably hard and we\u2019re not very good at it,\u201d Tong said. \u201cThere\u2019s still a lot we don\u2019t understand.\u201d<\/p>\n<p>Personally, I find myself to be a maximalist on the question of how many particles there are, even though (or because) it is a path to mystery. But I also see the appeal of 17.<\/p>\n<p>        <img loading=\"lazy\" width=\"1400\" height=\"563\" src=\"https:\/\/www.newsbeep.com\/ca\/wp-content\/uploads\/2026\/06\/ElementaryParticles-Spot-04-mobile.jpg\" class=\"block fit-x fill-h fill-v is-loaded mxa s:hidden m:hidden\" alt=\"\" decoding=\"async\"  \/><img loading=\"lazy\" width=\"1400\" height=\"563\" src=\"https:\/\/www.newsbeep.com\/ca\/wp-content\/uploads\/2026\/06\/ElementaryParticles-Spot-04-mobile.jpg\" class=\"block fit-x fill-h fill-v is-loaded mxa l:hidden\" alt=\"\" decoding=\"async\"  \/>    <\/p>\n","protected":false},"excerpt":{"rendered":"Every time I write about particle physics, I encounter a moment of uncertainty about a quantity that, at&hellip;\n","protected":false},"author":2,"featured_media":738603,"comment_status":"","ping_status":"","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[24],"tags":[49,48,314,66],"class_list":["post-738602","post","type-post","status-publish","format-standard","has-post-thumbnail","category-physics","tag-ca","tag-canada","tag-physics","tag-science"],"_links":{"self":[{"href":"https:\/\/www.newsbeep.com\/ca\/wp-json\/wp\/v2\/posts\/738602","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/www.newsbeep.com\/ca\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/www.newsbeep.com\/ca\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/www.newsbeep.com\/ca\/wp-json\/wp\/v2\/users\/2"}],"replies":[{"embeddable":true,"href":"https:\/\/www.newsbeep.com\/ca\/wp-json\/wp\/v2\/comments?post=738602"}],"version-history":[{"count":0,"href":"https:\/\/www.newsbeep.com\/ca\/wp-json\/wp\/v2\/posts\/738602\/revisions"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/www.newsbeep.com\/ca\/wp-json\/wp\/v2\/media\/738603"}],"wp:attachment":[{"href":"https:\/\/www.newsbeep.com\/ca\/wp-json\/wp\/v2\/media?parent=738602"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/www.newsbeep.com\/ca\/wp-json\/wp\/v2\/categories?post=738602"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/www.newsbeep.com\/ca\/wp-json\/wp\/v2\/tags?post=738602"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}