{"id":542600,"date":"2026-07-28T15:42:10","date_gmt":"2026-07-28T13:42:10","guid":{"rendered":"https:\/\/silicon-saxony.de\/hzdr-why-even-small-but-frequent-disruptions-can-cause-quantum-computations-to-fail\/"},"modified":"2026-07-28T15:42:10","modified_gmt":"2026-07-28T13:42:10","slug":"hzdr-why-even-small-but-frequent-disruptions-can-cause-quantum-computations-to-fail","status":"publish","type":"post","link":"https:\/\/silicon-saxony.de\/en\/hzdr-why-even-small-but-frequent-disruptions-can-cause-quantum-computations-to-fail\/","title":{"rendered":"HZDR: Why Even Small but Frequent Disruptions Can Cause Quantum Computations to Fail"},"content":{"rendered":"<p><img decoding=\"async\" style=\"width: 25%;\" src=\"https:\/\/cdn.pblzr.de\/dacbb27c-1270-4041-b681-e2b95f06f8a1\/2026\/07\/hzdr-logo-400x300_TEXT.jpg\"><\/p>\n<p>&#8220;The Quantum Zeno effect presents a previously unseen hurdle for a certain class of quantum computers,&#8221; says Dr. Gernot Schaller, head of the Quantum Information Technology Division at the HZDR Institute for Theoretical Physics. These so-called adiabatic quantum computers operate according to a special principle: Their qubits are always in the ground state\u2014that is, the state of lowest energy. To solve a computational problem, the energy landscape of the qubits is gradually altered\u2014so slowly that they can continuously adapt and follow the new ground state as it changes. Once the transformation is complete, the ground state immediately contains the solution to the problem.<\/p>\n<p>\u201cAdiabatic algorithms are considered robust and can be executed by quantum computers\u2014largely independent of the hardware used,\u201d explains Institute Director Prof. Ralf Sch\u00fctzhold. It therefore does not matter whether the qubits are generated using solid-state superconductors or individual ions trapped in electromagnetic traps. Both hardware variants are already being used to test adiabatic algorithms, which, from today\u2019s perspective, can be programmed elegantly and with relative ease.<\/p>\n<h3 class=\"\">When Disturbances Become a Problem<\/h3>\n<p>\u201cHowever, a quantum computer can only compute successfully if its qubits are not disturbed too much,\u201d emphasizes Sch\u00fctzhold. Shielding against electromagnetic radiation and cooling to temperatures close to absolute zero\u2014minus 273.15 degrees Celsius\u2014protect the qubits from such disturbances. Only then can qubits assume all possible states between zero and one\u2014a phenomenon known as superposition. Their quantum-physical coupling\u2014entanglement\u2014is also highly sensitive to external disturbances. It is the interplay of superposition and entanglement that enables the extremely fast solution of complex problems.<\/p>\n<p>\u201cBut despite all these measures, the influence of the environment on the qubits can never be completely ruled out,\u201d says Sch\u00fctzhold. According to the theoretical model developed by Sch\u00fctzhold\u2019s team, adiabatic quantum computers become increasingly sensitive to such disturbances as they scale up\u2014that is, as the number of qubits grows. This is because the more qubits are coupled together, the smaller the changes in the energy landscape that they must follow become. \u201cAt this point, the quantum Zeno effect kicks in,\u201d says Schaller. Even tiny influences from the environment are then sufficient to affect the quantum states of the qubits. \u201cEach of these disturbances acts like an unwanted measurement and halts the system\u2019s progress,\u201d says Schaller. \u201cIn extreme cases, a calculation could even freeze completely.\u201d<\/p>\n<p>A comparison with baking a cake illustrates the principle: For a cake to turn out right, it must rise undisturbed in the oven. If you constantly open the oven door to check whether it\u2019s done yet, you disrupt the baking process\u2014the cake remains flat or collapses. The situation is similar with the Quantum Zeno Effect: Every disturbance interrupts the natural evolution of the quantum state. If this happens too often, the system can no longer reach the desired final state. In extreme cases, the computational process comes to a near standstill.<\/p>\n<p>However, quantum computer developers are not helplessly at the mercy of the Quantum-Zeno effect. In addition to shielding against electromagnetic radiation and heat as effectively as possible\u2014which, in the cake analogy, would be like putting a padlock on the oven\u2014Sch\u00fctzhold also proposes active protective measures. \u201cUsing the so-called spin-echo method, the coupling of the qubits to their environment could be reduced through coherent pulses.\u201d In the cake analogy, this would be equivalent to an oven that compensates for every time the oven door is opened by briefly and rapidly heating up the interior. \u201cOur study shows that powerful quantum computers can only be developed if the influence of the environment is taken into account from the very beginning,\u201d Sch\u00fctzhold summarizes.<\/p>\n<h3 class=\"\">Publication<\/h3>\n<p>N. Ahmadiniaz, D. Kraft, G. Schaller, R. Sch\u00fctzhold: Quantum Zeno effect versus adiabatic quantum computing and quantum annealing, in New Journal of Physics (2026) (DOI: 10.1088\/1367-2630\/ae6e68)<\/p>\n<h3 class=\"\">Contact<\/h3>\n<p>Dr. Gernot Schaller | Head of Quantum Information Technology<br \/>Institute for Theoretical Physics at HZDR<br \/>Tel.: +49 351 260 3307 | Email: g.schaller@hzdr.de<\/p>\n<p>Prof. Dr. Ralf Sch\u00fctzhold | Director<br \/>Institute for Theoretical Physics at HZDR<br \/>Phone: +49 351 260 3618 | Email: r.schuetzhold@hzdr.de<\/p>\n<p>&#8211; &#8211; &#8211; &#8211; &#8211;<\/p>\n<h4 class=\"\">Further Links<\/h4>\n<p>\ud83d\udc49&nbsp;<a href=\"http:\/\/www.hzdr.de\" target=\"_blank\">www.hzdr.de<\/a>&nbsp;&nbsp;<\/p>\n<p><i>Photo: B. Schr\u00f6der\/HZDR<\/i><\/p>\n","protected":false},"excerpt":{"rendered":"<p>July 24, 2026. Quantum computers promise to solve complex problems faster and more energy-efficiently than today\u2019s supercomputers\u2014from optimizing logistics processes to simulating molecules. As the number of their computational units, known as qubits, increases, this goal is coming closer to reality. But in addition to the technical challenges of scaling, a problem that has received little attention so far looms large: Researchers at the Helmholtz-Zentrum Dresden-Rossendorf (HZDR) demonstrate in the *New Journal of Physics* (DOI: 10.1088\/1367-2630\/ae6e68) that the so-called quantum Zeno effect can, in extreme cases, bring computational processes to a near standstill as the number of qubits increases\u2014a phenomenon comparable to the dreaded \u201cfreeze\u201d of classical computers.<\/p>\n","protected":false},"author":3,"featured_media":0,"comment_status":"","ping_status":"","sticky":false,"template":"","format":"standard","meta":{"_acf_changed":false,"inline_featured_image":false,"footnotes":"","_links_to":"","_links_to_target":""},"categories":[4691],"tags":[1979,1954],"class_list":["post-542600","post","type-post","status-publish","format-standard","hentry","category-smart-systems-en","tag-quantum-computing","tag-research-development"],"acf":[],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v27.1.1 - https:\/\/yoast.com\/product\/yoast-seo-wordpress\/ -->\n<title>HZDR: Why Even Small but Frequent Disruptions Can Cause Quantum Computations to Fail - Silicon Saxony<\/title>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, max-video-preview:-1\" \/>\n<link rel=\"canonical\" href=\"https:\/\/silicon-saxony.de\/en\/hzdr-why-even-small-but-frequent-disruptions-can-cause-quantum-computations-to-fail\/\" \/>\n<meta property=\"og:locale\" content=\"en_US\" \/>\n<meta property=\"og:type\" content=\"article\" \/>\n<meta property=\"og:title\" content=\"HZDR: Why Even Small but Frequent Disruptions Can Cause Quantum Computations to Fail - Silicon Saxony\" \/>\n<meta property=\"og:description\" content=\"July 24, 2026. Quantum computers promise to solve complex problems faster and more energy-efficiently than today\u2019s supercomputers\u2014from optimizing logistics processes to simulating molecules. As the number of their computational units, known as qubits, increases, this goal is coming closer to reality. But in addition to the technical challenges of scaling, a problem that has received little attention so far looms large: Researchers at the Helmholtz-Zentrum Dresden-Rossendorf (HZDR) demonstrate in the *New Journal of Physics* (DOI: 10.1088\/1367-2630\/ae6e68) that the so-called quantum Zeno effect can, in extreme cases, bring computational processes to a near standstill as the number of qubits increases\u2014a phenomenon comparable to the dreaded \u201cfreeze\u201d of classical computers.\" \/>\n<meta property=\"og:url\" content=\"https:\/\/silicon-saxony.de\/en\/hzdr-why-even-small-but-frequent-disruptions-can-cause-quantum-computations-to-fail\/\" \/>\n<meta property=\"og:site_name\" content=\"Silicon Saxony\" \/>\n<meta property=\"article:published_time\" content=\"2026-07-28T13:42:10+00:00\" \/>\n<meta property=\"og:image\" content=\"https:\/\/cdn.pblzr.de\/dacbb27c-1270-4041-b681-e2b95f06f8a1\/2026\/07\/hzdr-logo-400x300_TEXT.jpg\" \/>\n<meta name=\"author\" content=\"publizer2silisax\" \/>\n<meta name=\"twitter:card\" content=\"summary_large_image\" \/>\n<meta name=\"twitter:label1\" content=\"Written by\" \/>\n\t<meta name=\"twitter:data1\" content=\"publizer2silisax\" \/>\n\t<meta name=\"twitter:label2\" content=\"Est. reading time\" \/>\n\t<meta name=\"twitter:data2\" content=\"3 minutes\" \/>\n<script type=\"application\/ld+json\" class=\"yoast-schema-graph\">{\"@context\":\"https:\/\/schema.org\",\"@graph\":[{\"@type\":\"Article\",\"@id\":\"https:\/\/silicon-saxony.de\/en\/hzdr-why-even-small-but-frequent-disruptions-can-cause-quantum-computations-to-fail\/#article\",\"isPartOf\":{\"@id\":\"https:\/\/silicon-saxony.de\/en\/hzdr-why-even-small-but-frequent-disruptions-can-cause-quantum-computations-to-fail\/\"},\"author\":{\"name\":\"publizer2silisax\",\"@id\":\"https:\/\/silicon-saxony.de\/en\/#\/schema\/person\/098cd473f5dd7707320dd1e252e15ac6\"},\"headline\":\"HZDR: Why Even Small but Frequent Disruptions Can Cause Quantum Computations to Fail\",\"datePublished\":\"2026-07-28T13:42:10+00:00\",\"mainEntityOfPage\":{\"@id\":\"https:\/\/silicon-saxony.de\/en\/hzdr-why-even-small-but-frequent-disruptions-can-cause-quantum-computations-to-fail\/\"},\"wordCount\":706,\"image\":{\"@id\":\"https:\/\/silicon-saxony.de\/en\/hzdr-why-even-small-but-frequent-disruptions-can-cause-quantum-computations-to-fail\/#primaryimage\"},\"thumbnailUrl\":\"https:\/\/cdn.pblzr.de\/dacbb27c-1270-4041-b681-e2b95f06f8a1\/2026\/07\/hzdr-logo-400x300_TEXT.jpg\",\"keywords\":[\"Quantum Computing\",\"Research &amp; 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Quantum computers promise to solve complex problems faster and more energy-efficiently than today\u2019s supercomputers\u2014from optimizing logistics processes to simulating molecules. As the number of their computational units, known as qubits, increases, this goal is coming closer to reality. But in addition to the technical challenges of scaling, a problem that has received little attention so far looms large: Researchers at the Helmholtz-Zentrum Dresden-Rossendorf (HZDR) demonstrate in the *New Journal of Physics* (DOI: 10.1088\/1367-2630\/ae6e68) that the so-called quantum Zeno effect can, in extreme cases, bring computational processes to a near standstill as the number of qubits increases\u2014a phenomenon comparable to the dreaded \u201cfreeze\u201d of classical computers.","og_url":"https:\/\/silicon-saxony.de\/en\/hzdr-why-even-small-but-frequent-disruptions-can-cause-quantum-computations-to-fail\/","og_site_name":"Silicon Saxony","article_published_time":"2026-07-28T13:42:10+00:00","og_image":[{"url":"https:\/\/cdn.pblzr.de\/dacbb27c-1270-4041-b681-e2b95f06f8a1\/2026\/07\/hzdr-logo-400x300_TEXT.jpg","type":"","width":"","height":""}],"author":"publizer2silisax","twitter_card":"summary_large_image","twitter_misc":{"Written by":"publizer2silisax","Est. reading time":"3 minutes"},"schema":{"@context":"https:\/\/schema.org","@graph":[{"@type":"Article","@id":"https:\/\/silicon-saxony.de\/en\/hzdr-why-even-small-but-frequent-disruptions-can-cause-quantum-computations-to-fail\/#article","isPartOf":{"@id":"https:\/\/silicon-saxony.de\/en\/hzdr-why-even-small-but-frequent-disruptions-can-cause-quantum-computations-to-fail\/"},"author":{"name":"publizer2silisax","@id":"https:\/\/silicon-saxony.de\/en\/#\/schema\/person\/098cd473f5dd7707320dd1e252e15ac6"},"headline":"HZDR: Why Even Small but Frequent Disruptions Can Cause Quantum Computations to Fail","datePublished":"2026-07-28T13:42:10+00:00","mainEntityOfPage":{"@id":"https:\/\/silicon-saxony.de\/en\/hzdr-why-even-small-but-frequent-disruptions-can-cause-quantum-computations-to-fail\/"},"wordCount":706,"image":{"@id":"https:\/\/silicon-saxony.de\/en\/hzdr-why-even-small-but-frequent-disruptions-can-cause-quantum-computations-to-fail\/#primaryimage"},"thumbnailUrl":"https:\/\/cdn.pblzr.de\/dacbb27c-1270-4041-b681-e2b95f06f8a1\/2026\/07\/hzdr-logo-400x300_TEXT.jpg","keywords":["Quantum Computing","Research &amp; 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