{"id":737047,"date":"2026-07-01T14:32:09","date_gmt":"2026-07-01T14:32:09","guid":{"rendered":"https:\/\/www.newsbeep.com\/us\/737047\/"},"modified":"2026-07-01T14:32:09","modified_gmt":"2026-07-01T14:32:09","slug":"researchers-use-ibm-quantum-hardware-to-model-a-key-particle-physics-process","status":"publish","type":"post","link":"https:\/\/www.newsbeep.com\/us\/737047\/","title":{"rendered":"Researchers Use IBM Quantum Hardware to Model a Key Particle Physics Process"},"content":{"rendered":"<p class=\"wp-block-paragraph\">Insider Brief<\/p>\n<p>A Berkeley Lab scientist used <a href=\"https:\/\/app.thequantuminsider.com\/investor\/50910c5c-5f40-4896-8d55-86d58f4e7d7e\/profile\" target=\"_blank\" rel=\"noopener noreferrer nofollow\" data-tqi-id=\"50910c5c-5f40-4896-8d55-86d58f4e7d7e\" data-tqi-name=\"IBM\" data-tqi-logo=\"https:\/\/s3.us-east-2.amazonaws.com\/tqd.s3.bucket\/metaverse\/logo\/ibm.png\" data-tqi-type=\"investor\" data-tqi-url=\"https:\/\/app.thequantuminsider.com\/investor\/50910c5c-5f40-4896-8d55-86d58f4e7d7e\/profile\" class=\"tqi-company-link\">IBM<\/a> quantum hardware accessed through ORNL\u2019s Quantum Computer User Program to simulate a simplified version of hadronization, a key particle-physics process that remains difficult for classical computers to model. <\/p>\n<p>The project used 104 qubits on <a href=\"https:\/\/app.thequantuminsider.com\/investor\/50910c5c-5f40-4896-8d55-86d58f4e7d7e\/profile\" target=\"_blank\" rel=\"noopener noreferrer nofollow\" data-tqi-id=\"50910c5c-5f40-4896-8d55-86d58f4e7d7e\" data-tqi-name=\"IBM\" data-tqi-logo=\"https:\/\/s3.us-east-2.amazonaws.com\/tqd.s3.bucket\/metaverse\/logo\/ibm.png\" data-tqi-type=\"investor\" data-tqi-url=\"https:\/\/app.thequantuminsider.com\/investor\/50910c5c-5f40-4896-8d55-86d58f4e7d7e\/profile\" class=\"tqi-company-link\">IBM<\/a>\u2019s 156-qubit Heron processor to study string breaking, the process in which gluon strings between quarks snap and form new quark-antiquark pairs. <\/p>\n<p>The results matched earlier classical supercomputer work and suggested that part of the gluon string may behave like a finite-temperature gas before separation, though the model was limited to one dimension and simplified heavy-quark behavior.<\/p>\n<p>Image: Photo by <a href=\"https:\/\/unsplash.com\/@steve_j?utm_source=instant-images&amp;utm_medium=referral\" target=\"_blank\" rel=\"noreferrer noopener nofollow\">Steve A Johnson<\/a> on <a href=\"https:\/\/unsplash.com\" target=\"_blank\" rel=\"noreferrer noopener nofollow\">Unsplash<\/a><\/p>\n<p class=\"wp-block-paragraph\">PRESS RELEASE \u2014 By remotely accessing an <a href=\"https:\/\/app.thequantuminsider.com\/investor\/50910c5c-5f40-4896-8d55-86d58f4e7d7e\/profile\" target=\"_blank\" rel=\"noopener noreferrer nofollow\" data-tqi-id=\"50910c5c-5f40-4896-8d55-86d58f4e7d7e\" data-tqi-name=\"IBM\" data-tqi-logo=\"https:\/\/s3.us-east-2.amazonaws.com\/tqd.s3.bucket\/metaverse\/logo\/ibm.png\" data-tqi-type=\"investor\" data-tqi-url=\"https:\/\/app.thequantuminsider.com\/investor\/50910c5c-5f40-4896-8d55-86d58f4e7d7e\/profile\" class=\"tqi-company-link\">IBM<\/a> quantum computer through the\u00a0<a href=\"https:\/\/www.olcf.ornl.gov\/olcf-resources\/compute-systems\/quantum-computing-user-program\/\" rel=\"nofollow noopener\" target=\"_blank\">Quantum Computer User Program<\/a>\u00a0(QCUP) \u2014 a quantum computing access program managed by the <a href=\"https:\/\/app.thequantuminsider.com\/government\/fa95f11f-2426-4297-954f-ff4a8ee4b185\/profile\" target=\"_blank\" rel=\"noopener noreferrer nofollow\" data-tqi-id=\"fa95f11f-2426-4297-954f-ff4a8ee4b185\" data-tqi-name=\"Oak Ridge National Laboratory Quantum Computing Institute (ORNL)\" data-tqi-logo=\"https:\/\/s3.us-east-2.amazonaws.com\/tqd.s3.bucket\/logos\/Oak Ridge National Laboratory Quantum Computing Institute.png\" data-tqi-type=\"government\" data-tqi-url=\"https:\/\/app.thequantuminsider.com\/government\/fa95f11f-2426-4297-954f-ff4a8ee4b185\/profile\" class=\"tqi-company-link\">Oak<\/a> Ridge Leadership Computing Facility, a Department of Energy Office of Science user facility located at DOE\u2019s <a href=\"https:\/\/app.thequantuminsider.com\/government\/fa95f11f-2426-4297-954f-ff4a8ee4b185\/profile\" target=\"_blank\" rel=\"noopener noreferrer nofollow\" data-tqi-id=\"fa95f11f-2426-4297-954f-ff4a8ee4b185\" data-tqi-name=\"Oak Ridge National Laboratory Quantum Computing Institute (ORNL)\" data-tqi-logo=\"https:\/\/s3.us-east-2.amazonaws.com\/tqd.s3.bucket\/logos\/Oak Ridge National Laboratory Quantum Computing Institute.png\" data-tqi-type=\"government\" data-tqi-url=\"https:\/\/app.thequantuminsider.com\/government\/fa95f11f-2426-4297-954f-ff4a8ee4b185\/profile\" class=\"tqi-company-link\">Oak Ridge National Laboratory<\/a> \u2014 a research scientist at <a href=\"https:\/\/app.thequantuminsider.com\/government\/1871e7ab-122b-40d2-8e42-bf05dd7e650c\/profile\" target=\"_blank\" rel=\"noopener noreferrer nofollow\" data-tqi-id=\"1871e7ab-122b-40d2-8e42-bf05dd7e650c\" data-tqi-name=\"Lawrence Berkeley National Laboratory\" data-tqi-logo=\"https:\/\/s3.us-east-2.amazonaws.com\/tqd.s3.bucket\/metaverse\/logo\/Lawrence Berkeley National Laboratory.jpg\" data-tqi-type=\"government\" data-tqi-url=\"https:\/\/app.thequantuminsider.com\/government\/1871e7ab-122b-40d2-8e42-bf05dd7e650c\/profile\" class=\"tqi-company-link\">Lawrence Berkeley National Laboratory<\/a> successfully simulated a key process in particle physics: hadronization. Although based on a simplified model of\u00a0<a href=\"https:\/\/www.energy.gov\/science\/doe-explainsquantum-mechanics\" rel=\"nofollow noopener\" target=\"_blank\">quantum mechanics<\/a>, the project lays the groundwork for how physicists can leverage the power of quantum computers to make large scientific calculations beyond the capabilities of classical supercomputers.<\/p>\n<p class=\"wp-block-paragraph\">Hadronization occurs when two or more quarks\u2014the subatomic building blocks of matter \u2014 bind together through the strong nuclear force to form composite particles called hadrons. The most familiar examples of hadrons are protons and neutrons, which form the nuclei of atoms. So, having a better understanding of the hadronization process means having a better understanding of the structure of matter and, in turn, the universe.\u00a0<\/p>\n<p class=\"wp-block-paragraph\">Physical experiments have not been able to reveal every step of the process, however. Researchers at the\u00a0<a href=\"https:\/\/home.cern\/science\/accelerators\/large-hadron-collider\" rel=\"nofollow noopener\" target=\"_blank\">Large Hadron Collider<\/a>\u00a0(LHC) at <a href=\"https:\/\/app.thequantuminsider.com\/government\/b47d4ee9-4cd7-4ddf-ba00-c3dd2b668c53\/profile\" target=\"_blank\" rel=\"noopener noreferrer nofollow\" data-tqi-id=\"b47d4ee9-4cd7-4ddf-ba00-c3dd2b668c53\" data-tqi-name=\"CERN\" data-tqi-logo=\"https:\/\/s3.us-east-2.amazonaws.com\/tqd.s3.bucket\/images\/18ec1b09-94bd-49d0-82ea-2580f1add404.jpg\" data-tqi-type=\"government\" data-tqi-url=\"https:\/\/app.thequantuminsider.com\/government\/b47d4ee9-4cd7-4ddf-ba00-c3dd2b668c53\/profile\" class=\"tqi-company-link\">CERN<\/a> accelerate protons to near light speeds, guide them into collisions and study the resulting debris of quarks and antiquarks. But these particles can only be indirectly measured before they immediately undergo hadronization \u2014 hence the need for computer simulations to fill in the gaps of these scientific observations.\u00a0<\/p>\n<p class=\"wp-block-paragraph\">\u201cIn principle, we know the theory that describes hadronization, but we are unable to make predictions using it because the calculations have been too difficult for a classical computer. However, on a quantum computer, we should be able to directly make predictions for the details of how hadronization occurs, which will help with the searches for new physics performed at colliders such as the LHC,\u201d said Anthony Ciavarella, the Berkeley Lab research scientist who led the project. His findings were\u00a0<a href=\"https:\/\/journals.aps.org\/prd\/abstract\/10.1103\/PhysRevD.111.054501\" rel=\"nofollow noopener\" target=\"_blank\">published in\u00a0Physical Review D<\/a>.<\/p>\n<p class=\"wp-block-paragraph\"><a href=\"https:\/\/www.energy.gov\/science\/doe-explainsquantum-computing\" rel=\"nofollow noopener\" target=\"_blank\">Quantum computing<\/a>\u00a0\u2014 a technology still in the early stages of development relative to classical supercomputers such as the OLCF\u2019s exascale-class\u00a0<a href=\"https:\/\/www.olcf.ornl.gov\/olcf-resources\/compute-systems\/frontier\/\" rel=\"nofollow noopener\" target=\"_blank\">Frontier<\/a>\u00a0\u2014 utilizes quantum bits, or qubits, to perform calculations. Unlike binary bits used by classical computers, qubits don\u2019t employ only ones and zeroes to encode information. Rather, they use a quantum\u00a0<a href=\"https:\/\/science.osti.gov\/Initiatives\/QIS\" rel=\"nofollow noopener\" target=\"_blank\">superposition<\/a>\u00a0of combined ones and zeroes\u00a0that may exponentially increase processing power for certain kinds of problems, such as the\u00a0quantum mechanical interactions of subatomic particles.\u00a0<\/p>\n<p class=\"wp-block-paragraph\">Accurately simulating quantum chromodynamics (QCD) \u2014 the theory describing how the strong force binds quarks and gluons \u2014 overwhelms classical computers. The strong force binds and entangles the subatomic particles so that their representation and manipulation on classical computers requires exponential amounts of processing power and memory to predict observable results. This is because binary computers must separately represent all the different possible quantum states of the particles, which becomes an exponential scaling problem \u2014 the amount of memory needed doubles for every new particle or time step added to the simulation.<\/p>\n<p class=\"wp-block-paragraph\">On the other hand, quantum computers are\u00a0far more efficient at describing subatomic systems because their qubits can exist in multiple states just like the particles themselves.\u00a0Furthermore, their computational power grows exponentially with each additional qubit.\u00a0<\/p>\n<p class=\"wp-block-paragraph\">\u201cOne of the original motivations for building quantum computers was that they naturally have this quantum phenomenology built into how they\u2019re constructed. And in these simulations of subatomic systems, we\u2019ve got large amounts of entanglement and quantum correlations that you just can\u2019t efficiently represent on a regular computer,\u201d Ciavarella said.<\/p>\n<p>Setting the template for quantum calculations<\/p>\n<p class=\"wp-block-paragraph\">Ciavarella\u2019s project ultimately aims to develop the computational techniques needed to simulate the QCD of large subatomic systems on quantum computers of the near future. (Current quantum computers have limited numbers of qubits and are prone to high error rates, but the technology is rapidly evolving.) For this initial step, he simplified the simulation\u2019s parameters with a combination of his own techniques and ones that scientists have used for QCD simulations on classical computers. With the cloud access provided by QCUP, he applied them to a Heron processor on the\u00a0<a href=\"https:\/\/quantum.cloud.ibm.com\/\" rel=\"nofollow noopener\" target=\"_blank\">IBM Quantum Platform<\/a>, leveraging 104 of its 156 qubits.\u00a0<\/p>\n<p class=\"wp-block-paragraph\">First, Ciavarella used a heavy quark limit while simulating string breaking, which is a fundamental mechanism in the hadronization process. Quarks are linked by \u201cstrings\u201d of gluons that stretch as the quarks collide and spin away, ultimately releasing enough energy to \u201csnap\u201d the gluon string apart as a new quark-antiquark pair bind together to form a hadron. Heavy quarks (with more mass) are easier to simulate because they don\u2019t spread out as much as light quarks, so they can fit more easily as points on a simulation grid. Researchers then extrapolate these heavy results down to the light quark behavior.<\/p>\n<p class=\"wp-block-paragraph\">Second, Ciavarella used a \u201cscalable circuit concurrent variational quantum solver,\u201d a computational technique that he co-developed as a graduate student at the University of Washington, to bring the quantum computer\u2019s qubits to a quantum vacuum state \u2014 the lowest energy level with the most stability.\u00a0<\/p>\n<p class=\"wp-block-paragraph\">\u201cThe idea is to optimize these vacuum preparation circuits on a small system size. Then you do it slightly bigger and slightly bigger and slightly bigger. So, by doing this, you can understand how the parameters of your circuit depend on the system size, and you can then extrapolate that out to doing it for a large system. For example, you can optimize this on up to 10-12 qubits and then extrapolate that out to hundreds if you choose to do so,\u201d Ciavarella said.<\/p>\n<p class=\"wp-block-paragraph\">Finally, he limited his simulation to one dimension, with particles moving only left to right and back. Ciavarella plans on adding an additional dimension in the next iteration of his work, which he\u2019ll tackle once he can access improved quantum computers and algorithms. But this project succeeded in seeing how far the existing hardware can be pushed in string-breaking simulations, with results that matched previous work on classical supercomputers.<\/p>\n<p class=\"wp-block-paragraph\">\u201cOne of the findings that we reproduced here is that, in the middle of the gluon string, it starts to look like it\u2019s gasifying at a finite temperature before it separates.\u00a0This is exciting because, if we see this reproduced across a wide range of different simplified models, then it should be more likely it\u2019s an actual feature of QCD that describes the world we live in,\u201d Ciavarella said.<\/p>\n<p class=\"wp-block-paragraph\">QCUP provides computational scientists with access to state-of-the-art commercial quantum computing resources for purposes of discovery and innovation in scientific computing applications. It is managed by the <a href=\"https:\/\/app.thequantuminsider.com\/government\/fa95f11f-2426-4297-954f-ff4a8ee4b185\/profile\" target=\"_blank\" rel=\"noopener noreferrer nofollow\" data-tqi-id=\"fa95f11f-2426-4297-954f-ff4a8ee4b185\" data-tqi-name=\"Oak Ridge National Laboratory Quantum Computing Institute (ORNL)\" data-tqi-logo=\"https:\/\/s3.us-east-2.amazonaws.com\/tqd.s3.bucket\/logos\/Oak Ridge National Laboratory Quantum Computing Institute.png\" data-tqi-type=\"government\" data-tqi-url=\"https:\/\/app.thequantuminsider.com\/government\/fa95f11f-2426-4297-954f-ff4a8ee4b185\/profile\" class=\"tqi-company-link\">Oak<\/a> Ridge Leadership Computing Facility. The OLCF is a DOE Office of Science user facility at ORNL that is supported by DOE\u2019s Advanced Scientific Computing Research program.<\/p>\n<p class=\"wp-block-paragraph\">UT-Battelle manages ORNL for DOE\u2019s Office of Science. The Office of Science is the largest supporter of basic research in the physical sciences in the United States and is committed to addressing some of the most pressing challenges of our time. For more information, visit\u00a0<a href=\"https:\/\/energy.gov\/science\" rel=\"nofollow noopener\" target=\"_blank\">energy.gov\/science<\/a>.<\/p>\n","protected":false},"excerpt":{"rendered":"Insider Brief A Berkeley Lab scientist used IBM quantum hardware accessed through ORNL\u2019s Quantum Computer User Program to&hellip;\n","protected":false},"author":2,"featured_media":737048,"comment_status":"","ping_status":"","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[49],"tags":[199,79],"class_list":["post-737047","post","type-post","status-publish","format-standard","has-post-thumbnail","category-physics","tag-physics","tag-science"],"_links":{"self":[{"href":"https:\/\/www.newsbeep.com\/us\/wp-json\/wp\/v2\/posts\/737047","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/www.newsbeep.com\/us\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/www.newsbeep.com\/us\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/www.newsbeep.com\/us\/wp-json\/wp\/v2\/users\/2"}],"replies":[{"embeddable":true,"href":"https:\/\/www.newsbeep.com\/us\/wp-json\/wp\/v2\/comments?post=737047"}],"version-history":[{"count":0,"href":"https:\/\/www.newsbeep.com\/us\/wp-json\/wp\/v2\/posts\/737047\/revisions"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/www.newsbeep.com\/us\/wp-json\/wp\/v2\/media\/737048"}],"wp:attachment":[{"href":"https:\/\/www.newsbeep.com\/us\/wp-json\/wp\/v2\/media?parent=737047"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/www.newsbeep.com\/us\/wp-json\/wp\/v2\/categories?post=737047"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/www.newsbeep.com\/us\/wp-json\/wp\/v2\/tags?post=737047"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}