Observation of Josephson Harmonics in Tunnel Junctions
Approaches to developing large-scale superconducting quantum processors must cope with the numerous microscopic degrees of freedom that are ubiquitous in solid-state devices. State-of-the-art superconducting qubits employ aluminum oxide (AlO\(_x\)) tunnel Josephson junctions as the sources of nonlin...
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creator | Willsch, Dennis Rieger, Dennis Winkel, Patrick Willsch, Madita Dickel, Christian Krause, Jonas Ando, Yoichi Lescanne, Raphaël Zaki Leghtas Bronn, Nicholas T Pratiti Deb Lanes, Olivia Minev, Zlatko K Dennig, Benedikt Geisert, Simon Günzler, Simon Ihssen, Sören Paluch, Patrick Reisinger, Thomas Hanna, Roudy Bae, Jin Hee Schüffelgen, Peter Grützmacher, Detlev Buimaga-Iarinca, Luiza Morari, Cristian Wernsdorfer, Wolfgang DiVincenzo, David P Michielsen, Kristel Catelani, Gianluigi Pop, Ioan M |
description | Approaches to developing large-scale superconducting quantum processors must cope with the numerous microscopic degrees of freedom that are ubiquitous in solid-state devices. State-of-the-art superconducting qubits employ aluminum oxide (AlO\(_x\)) tunnel Josephson junctions as the sources of nonlinearity necessary to perform quantum operations. Analyses of these junctions typically assume an idealized, purely sinusoidal current-phase relation. However, this relation is only expected to hold in the limit of vanishingly low-transparency channels in the AlO\(_x\) barrier. Here we show that the standard current-phase relation fails to accurately describe the energy spectra of transmon artificial atoms across various samples and laboratories. Instead, a mesoscopic model of tunneling through an inhomogeneous AlO\(_x\) barrier predicts percent-level contributions from higher Josephson harmonics. By including these in the transmon Hamiltonian, we obtain orders of magnitude better agreement between the computed and measured energy spectra. The presence and impact of Josephson harmonics has important implications for developing AlO\(_x\)-based quantum technologies including quantum computers and parametric amplifiers. As an example, we show that engineered Josephson harmonics can reduce the charge dispersion and the associated errors in transmon qubits by an order of magnitude, while preserving their anharmonicity. |
doi_str_mv | 10.48550/arxiv.2302.09192 |
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State-of-the-art superconducting qubits employ aluminum oxide (AlO\(_x\)) tunnel Josephson junctions as the sources of nonlinearity necessary to perform quantum operations. Analyses of these junctions typically assume an idealized, purely sinusoidal current-phase relation. However, this relation is only expected to hold in the limit of vanishingly low-transparency channels in the AlO\(_x\) barrier. Here we show that the standard current-phase relation fails to accurately describe the energy spectra of transmon artificial atoms across various samples and laboratories. Instead, a mesoscopic model of tunneling through an inhomogeneous AlO\(_x\) barrier predicts percent-level contributions from higher Josephson harmonics. By including these in the transmon Hamiltonian, we obtain orders of magnitude better agreement between the computed and measured energy spectra. The presence and impact of Josephson harmonics has important implications for developing AlO\(_x\)-based quantum technologies including quantum computers and parametric amplifiers. As an example, we show that engineered Josephson harmonics can reduce the charge dispersion and the associated errors in transmon qubits by an order of magnitude, while preserving their anharmonicity.</description><identifier>EISSN: 2331-8422</identifier><identifier>DOI: 10.48550/arxiv.2302.09192</identifier><language>eng</language><publisher>Ithaca: Cornell University Library, arXiv.org</publisher><subject>Data processing ; Energy spectra ; Hardware ; Higher harmonics ; Josephson effect ; Josephson junctions ; Physics - Quantum Physics ; Physics - Superconductivity ; Quantum computing ; Quantum dots ; Quantum phenomena ; Superconductivity ; Tunnel junctions</subject><ispartof>arXiv.org, 2024-11</ispartof><rights>2024. 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Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License.</rights><rights>http://arxiv.org/licenses/nonexclusive-distrib/1.0</rights><oa>free_for_read</oa><woscitedreferencessubscribed>false</woscitedreferencessubscribed></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><link.rule.ids>228,230,776,780,881,27902</link.rule.ids><backlink>$$Uhttps://doi.org/10.1038/s41567-024-02400-8$$DView published paper (Access to full text may be restricted)$$Hfree_for_read</backlink><backlink>$$Uhttps://doi.org/10.48550/arXiv.2302.09192$$DView paper in arXiv$$Hfree_for_read</backlink></links><search><creatorcontrib>Willsch, Dennis</creatorcontrib><creatorcontrib>Rieger, Dennis</creatorcontrib><creatorcontrib>Winkel, Patrick</creatorcontrib><creatorcontrib>Willsch, Madita</creatorcontrib><creatorcontrib>Dickel, Christian</creatorcontrib><creatorcontrib>Krause, Jonas</creatorcontrib><creatorcontrib>Ando, Yoichi</creatorcontrib><creatorcontrib>Lescanne, Raphaël</creatorcontrib><creatorcontrib>Zaki Leghtas</creatorcontrib><creatorcontrib>Bronn, Nicholas T</creatorcontrib><creatorcontrib>Pratiti Deb</creatorcontrib><creatorcontrib>Lanes, Olivia</creatorcontrib><creatorcontrib>Minev, Zlatko K</creatorcontrib><creatorcontrib>Dennig, Benedikt</creatorcontrib><creatorcontrib>Geisert, Simon</creatorcontrib><creatorcontrib>Günzler, Simon</creatorcontrib><creatorcontrib>Ihssen, Sören</creatorcontrib><creatorcontrib>Paluch, Patrick</creatorcontrib><creatorcontrib>Reisinger, Thomas</creatorcontrib><creatorcontrib>Hanna, Roudy</creatorcontrib><creatorcontrib>Bae, Jin Hee</creatorcontrib><creatorcontrib>Schüffelgen, Peter</creatorcontrib><creatorcontrib>Grützmacher, Detlev</creatorcontrib><creatorcontrib>Buimaga-Iarinca, Luiza</creatorcontrib><creatorcontrib>Morari, Cristian</creatorcontrib><creatorcontrib>Wernsdorfer, Wolfgang</creatorcontrib><creatorcontrib>DiVincenzo, David P</creatorcontrib><creatorcontrib>Michielsen, Kristel</creatorcontrib><creatorcontrib>Catelani, Gianluigi</creatorcontrib><creatorcontrib>Pop, Ioan M</creatorcontrib><title>Observation of Josephson Harmonics in Tunnel Junctions</title><title>arXiv.org</title><description>Approaches to developing large-scale superconducting quantum processors must cope with the numerous microscopic degrees of freedom that are ubiquitous in solid-state devices. State-of-the-art superconducting qubits employ aluminum oxide (AlO\(_x\)) tunnel Josephson junctions as the sources of nonlinearity necessary to perform quantum operations. Analyses of these junctions typically assume an idealized, purely sinusoidal current-phase relation. However, this relation is only expected to hold in the limit of vanishingly low-transparency channels in the AlO\(_x\) barrier. Here we show that the standard current-phase relation fails to accurately describe the energy spectra of transmon artificial atoms across various samples and laboratories. Instead, a mesoscopic model of tunneling through an inhomogeneous AlO\(_x\) barrier predicts percent-level contributions from higher Josephson harmonics. By including these in the transmon Hamiltonian, we obtain orders of magnitude better agreement between the computed and measured energy spectra. The presence and impact of Josephson harmonics has important implications for developing AlO\(_x\)-based quantum technologies including quantum computers and parametric amplifiers. As an example, we show that engineered Josephson harmonics can reduce the charge dispersion and the associated errors in transmon qubits by an order of magnitude, while preserving their anharmonicity.</description><subject>Data processing</subject><subject>Energy spectra</subject><subject>Hardware</subject><subject>Higher harmonics</subject><subject>Josephson effect</subject><subject>Josephson junctions</subject><subject>Physics - Quantum Physics</subject><subject>Physics - Superconductivity</subject><subject>Quantum computing</subject><subject>Quantum dots</subject><subject>Quantum phenomena</subject><subject>Superconductivity</subject><subject>Tunnel junctions</subject><issn>2331-8422</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2024</creationdate><recordtype>article</recordtype><sourceid>BENPR</sourceid><sourceid>GOX</sourceid><recordid>eNotj8tqwzAUREWh0JDmA7qqoWu7V1fStbUsoW0aAtl4byRbpg6J7EpxaP--zmM1DByGOYw9cchkoRS8mvDbnTIUgBlorvGOzVAInhYS8YEtYtwBAFKOSokZo62NLpzMset90rfJuo9u-I5TWZlw6H1Xx6TzSTl67_bJevT1mYyP7L41--gWt5yz8uO9XK7Szfbza_m2SY1CmRLY1pAC4VoqCtCSk1bSuZorwhqAGpE7LYRF56h1lhrbAOVEloOeqpiz5-vsRaoaQncw4a86y1UXuYl4uRJD6H9GF4_Vrh-Dnz5VmOeF1DxHKf4BFTVRAA</recordid><startdate>20241111</startdate><enddate>20241111</enddate><creator>Willsch, Dennis</creator><creator>Rieger, Dennis</creator><creator>Winkel, Patrick</creator><creator>Willsch, Madita</creator><creator>Dickel, Christian</creator><creator>Krause, Jonas</creator><creator>Ando, Yoichi</creator><creator>Lescanne, Raphaël</creator><creator>Zaki Leghtas</creator><creator>Bronn, Nicholas T</creator><creator>Pratiti Deb</creator><creator>Lanes, Olivia</creator><creator>Minev, Zlatko K</creator><creator>Dennig, Benedikt</creator><creator>Geisert, Simon</creator><creator>Günzler, Simon</creator><creator>Ihssen, Sören</creator><creator>Paluch, Patrick</creator><creator>Reisinger, Thomas</creator><creator>Hanna, Roudy</creator><creator>Bae, Jin Hee</creator><creator>Schüffelgen, Peter</creator><creator>Grützmacher, Detlev</creator><creator>Buimaga-Iarinca, Luiza</creator><creator>Morari, Cristian</creator><creator>Wernsdorfer, Wolfgang</creator><creator>DiVincenzo, David P</creator><creator>Michielsen, Kristel</creator><creator>Catelani, Gianluigi</creator><creator>Pop, Ioan M</creator><general>Cornell University Library, arXiv.org</general><scope>8FE</scope><scope>8FG</scope><scope>ABJCF</scope><scope>ABUWG</scope><scope>AFKRA</scope><scope>AZQEC</scope><scope>BENPR</scope><scope>BGLVJ</scope><scope>CCPQU</scope><scope>DWQXO</scope><scope>HCIFZ</scope><scope>L6V</scope><scope>M7S</scope><scope>PIMPY</scope><scope>PQEST</scope><scope>PQQKQ</scope><scope>PQUKI</scope><scope>PRINS</scope><scope>PTHSS</scope><scope>GOX</scope></search><sort><creationdate>20241111</creationdate><title>Observation of Josephson Harmonics in Tunnel Junctions</title><author>Willsch, Dennis ; Rieger, Dennis ; Winkel, Patrick ; Willsch, Madita ; Dickel, Christian ; Krause, Jonas ; Ando, Yoichi ; Lescanne, Raphaël ; Zaki Leghtas ; Bronn, Nicholas T ; Pratiti Deb ; Lanes, Olivia ; Minev, Zlatko K ; Dennig, Benedikt ; Geisert, Simon ; Günzler, Simon ; Ihssen, Sören ; Paluch, Patrick ; Reisinger, Thomas ; Hanna, Roudy ; Bae, Jin Hee ; Schüffelgen, Peter ; Grützmacher, Detlev ; Buimaga-Iarinca, Luiza ; Morari, Cristian ; Wernsdorfer, Wolfgang ; DiVincenzo, David P ; Michielsen, Kristel ; Catelani, Gianluigi ; Pop, Ioan M</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-a524-60bfa6503ef68809416954eec1562c006d37e933b2ee6feb6dbd06766b109eb63</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2024</creationdate><topic>Data processing</topic><topic>Energy spectra</topic><topic>Hardware</topic><topic>Higher harmonics</topic><topic>Josephson effect</topic><topic>Josephson junctions</topic><topic>Physics - 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State-of-the-art superconducting qubits employ aluminum oxide (AlO\(_x\)) tunnel Josephson junctions as the sources of nonlinearity necessary to perform quantum operations. Analyses of these junctions typically assume an idealized, purely sinusoidal current-phase relation. However, this relation is only expected to hold in the limit of vanishingly low-transparency channels in the AlO\(_x\) barrier. Here we show that the standard current-phase relation fails to accurately describe the energy spectra of transmon artificial atoms across various samples and laboratories. Instead, a mesoscopic model of tunneling through an inhomogeneous AlO\(_x\) barrier predicts percent-level contributions from higher Josephson harmonics. By including these in the transmon Hamiltonian, we obtain orders of magnitude better agreement between the computed and measured energy spectra. The presence and impact of Josephson harmonics has important implications for developing AlO\(_x\)-based quantum technologies including quantum computers and parametric amplifiers. As an example, we show that engineered Josephson harmonics can reduce the charge dispersion and the associated errors in transmon qubits by an order of magnitude, while preserving their anharmonicity.</abstract><cop>Ithaca</cop><pub>Cornell University Library, arXiv.org</pub><doi>10.48550/arxiv.2302.09192</doi><oa>free_for_read</oa></addata></record> |
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subjects | Data processing Energy spectra Hardware Higher harmonics Josephson effect Josephson junctions Physics - Quantum Physics Physics - Superconductivity Quantum computing Quantum dots Quantum phenomena Superconductivity Tunnel junctions |
title | Observation of Josephson Harmonics in Tunnel Junctions |
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