{"id":444,"date":"2023-05-14T17:49:05","date_gmt":"2023-05-14T15:49:05","guid":{"rendered":"https:\/\/aept.blogs.ruhr-uni-bochum.de\/?page_id=444"},"modified":"2023-05-14T17:50:07","modified_gmt":"2023-05-14T15:50:07","slug":"mate-vass","status":"publish","type":"page","link":"https:\/\/aept.blogs.ruhr-uni-bochum.de\/de\/mate-vass\/","title":{"rendered":"M\u00e1t\u00e9 Vass, M.Sc."},"content":{"rendered":"<p>Researcher<\/p>\n\n\n\n<div class=\"wp-block-columns is-layout-flex wp-container-core-columns-is-layout-9d6595d7 wp-block-columns-is-layout-flex\">\n<div class=\"wp-block-column is-layout-flow wp-block-column-is-layout-flow\" style=\"flex-basis:66.66%\">\n<p><strong>Address<\/strong><br>Ruhr-Uni\u00adver\u00adsi\u00adt\u00e4t Bo\u00adchum<br>Fakult\u00e4t f\u00fcr Elektrotechnik und Informationstechnik<br>Angewandte Elektrodynamik und Plasmatechnik<br>Uni\u00adver\u00adsi\u00adt\u00e4ts\u00adstra\u00ad\u00dfe 150<br>D-44801 Bo\u00adchum, Germany<\/p>\n\n\n\n<p><strong>Room<\/strong><br>ID 1\/114<\/p>\n\n\n\n<p><strong>Phone<\/strong><br>+49 234 32 22766<\/p>\n\n\n\n<p><strong>Email<\/strong><br>vass(at)aept.rub.de<\/p>\n<\/div>\n\n\n\n<div class=\"wp-block-column is-layout-flow wp-block-column-is-layout-flow\" style=\"flex-basis:33.33%\">\n<figure class=\"wp-block-image size-large\"><img loading=\"lazy\" decoding=\"async\" width=\"682\" height=\"1024\" src=\"https:\/\/aept.blogs.ruhr-uni-bochum.de\/wp-content\/uploads\/2023\/05\/Mate-Vass-WEB-02151-sRGB-682x1024.jpg\" alt=\"\" class=\"wp-image-371\" srcset=\"https:\/\/aept.blogs.ruhr-uni-bochum.de\/wp-content\/uploads\/2023\/05\/Mate-Vass-WEB-02151-sRGB-682x1024.jpg 682w, https:\/\/aept.blogs.ruhr-uni-bochum.de\/wp-content\/uploads\/2023\/05\/Mate-Vass-WEB-02151-sRGB-200x300.jpg 200w, https:\/\/aept.blogs.ruhr-uni-bochum.de\/wp-content\/uploads\/2023\/05\/Mate-Vass-WEB-02151-sRGB-768x1152.jpg 768w, https:\/\/aept.blogs.ruhr-uni-bochum.de\/wp-content\/uploads\/2023\/05\/Mate-Vass-WEB-02151-sRGB.jpg 853w\" sizes=\"auto, (max-width: 682px) 100vw, 682px\" \/><\/figure>\n<\/div>\n<\/div>\n\n\n\n<hr class=\"wp-block-separator has-alpha-channel-opacity is-style-wide\"\/>\n\n\n\n<p><strong>Publications<\/strong><\/p>\n\n\n<div id=\"zotpress-2f52adfdb35cae7bc5d63592695d2e80\" class=\"zp-Zotpress zp-Zotpress-Bib wp-block-group\">\n\n\t\t<span class=\"ZP_API_USER_ID ZP_ATTR\">2825793<\/span>\n\t\t<span class=\"ZP_ITEM_KEY ZP_ATTR\"><\/span>\n\t\t<span class=\"ZP_COLLECTION_ID ZP_ATTR\"><\/span>\n\t\t<span class=\"ZP_TAG_ID ZP_ATTR\"><\/span>\n\t\t<span class=\"ZP_AUTHOR ZP_ATTR\">Vass<\/span>\n\t\t<span class=\"ZP_YEAR ZP_ATTR\"><\/span>\n        <span class=\"ZP_ITEMTYPE ZP_ATTR\"><\/span>\n\t\t<span class=\"ZP_INCLUSIVE ZP_ATTR\">1<\/span>\n\t\t<span class=\"ZP_STYLE ZP_ATTR\">apa<\/span>\n\t\t<span class=\"ZP_LIMIT ZP_ATTR\">50<\/span>\n\t\t<span class=\"ZP_SORTBY ZP_ATTR\">date<\/span>\n\t\t<span class=\"ZP_ORDER ZP_ATTR\">desc<\/span>\n\t\t<span class=\"ZP_TITLE ZP_ATTR\">year<\/span>\n\t\t<span class=\"ZP_SHOWIMAGE ZP_ATTR\"><\/span>\n\t\t<span class=\"ZP_SHOWTAGS ZP_ATTR\"><\/span>\n\t\t<span class=\"ZP_DOWNLOADABLE ZP_ATTR\"><\/span>\n\t\t<span class=\"ZP_NOTES ZP_ATTR\"><\/span>\n\t\t<span class=\"ZP_ABSTRACT ZP_ATTR\"><\/span>\n\t\t<span class=\"ZP_CITEABLE ZP_ATTR\">1<\/span>\n\t\t<span class=\"ZP_TARGET ZP_ATTR\"><\/span>\n\t\t<span class=\"ZP_URLWRAP ZP_ATTR\"><\/span>\n\t\t<span class=\"ZP_FORCENUM ZP_ATTR\"><\/span>\n        <span class=\"ZP_HIGHLIGHT ZP_ATTR\">Vass<\/span>\n        <span class=\"ZP_POSTID ZP_ATTR\">444<\/span>\n\t\t<span class=\"ZOTPRESS_PLUGIN_URL ZP_ATTR\">https:\/\/aept.blogs.ruhr-uni-bochum.de\/wp-content\/plugins\/zotpress\/<\/span>\n\n\t\t<div class=\"zp-List loading\">\n\t\t\t<div class=\"zp-SEO-Content\">\n\t\t\t\t<span class=\"ZP_JSON 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E., Filla, D., Mussenbrock, T., <strong>Vass<\/strong>, M., & Korolov, I. (2026). Effects of pressure and oxygen\/nitrogen gas mixture on streamer formation and propagation in a <i>\u03bc<\/i> s\/ns-pulsed surface dielectric barrier discharge. <i>Physics of Plasmas<\/i>, <i>33<\/i>(3), 033509. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1063\/5.0314702'>https:\/\/doi.org\/10.1063\/5.0314702<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=SRK2XXCQ' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-PJQ9VD8G\" data-zp-author-date='Schulenberg-et-al.-2026-01-01' data-zp-date-author='2026-01-01-Schulenberg-et-al.' data-zp-date='2026-01-01' data-zp-year='2026' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Schulenberg, D. 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Two-dimensional spatially resolved measurements of helium metastable densities by tunable diode laser absorption spectroscopy in atmospheric pressure RF plasma jets. <i>Review of Scientific Instruments<\/i>, <i>97<\/i>(1), 013505. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1063\/5.0292405'>https:\/\/doi.org\/10.1063\/5.0292405<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=PJQ9VD8G' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-NXIJHRB3\" data-zp-author-date='Vogelhuber-et-al.-2025-12-01' data-zp-date-author='2025-12-01-Vogelhuber-et-al.' data-zp-date='2025-12-01' data-zp-year='2025' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Vogelhuber, L., Korolov, I., <strong>Vass<\/strong>, M., N\u00f6sges, K., Bolles, T., K\u00f6hn, K., Klich, M., Brinkmann, R. 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Electronegativity effects on plasma dynamics in He\/O<sub>2<\/sub> RF microplasma jets at atmospheric pressure. <i>Plasma Sources Science and Technology<\/i>, <i>34<\/i>(12), 125012. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/ae253e'>https:\/\/doi.org\/10.1088\/1361-6595\/ae253e<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=NXIJHRB3' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-RXRC78W7\" data-zp-author-date='Vass-et-al.-2025-10-13' data-zp-date-author='2025-10-13-Vass-et-al.' data-zp-date='2025-10-13' data-zp-year='2025' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\"><strong>Vass<\/strong>, M., Wang, X., Korolov, I., Schulze, J., & Mussenbrock, T. (2025). Synergistic control of radical generation in a radio-frequency atmospheric-pressure plasma jet via voltage waveform tailoring and structured electrodes. <i>Journal of Physics D: Applied Physics<\/i>, <i>58<\/i>(41), 415207. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6463\/ae08c7'>https:\/\/doi.org\/10.1088\/1361-6463\/ae08c7<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=RXRC78W7' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-MZ2X8UET\" data-zp-author-date='Chur-et-al.-2025-10-01' data-zp-date-author='2025-10-01-Chur-et-al.' data-zp-date='2025-10-01' data-zp-year='2025' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Chur, S., Minke, R., He, Y., <strong>Vass<\/strong>, M., Mussenbrock, T., Peter Brinkmann, R., Kemaneci, E., Sch\u00fccke, L., Schulz-von Der Gathen, V., Gibson, A. R., B\u00f6ke, M., & Golda, J. (2025). Dynamics of reactive oxygen species produced by the COST microplasma jet. <i>Plasma Sources Science and Technology<\/i>, <i>34<\/i>(10), 105014. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/adfd7f'>https:\/\/doi.org\/10.1088\/1361-6595\/adfd7f<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=MZ2X8UET' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-7Q3CFXGQ\" data-zp-author-date='Tian-et-al.-2025-09-01' data-zp-date-author='2025-09-01-Tian-et-al.' data-zp-date='2025-09-01' data-zp-year='2025' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Tian, C.-B., Wang, L., <strong>Vass<\/strong>, M., Wang, X.-K., Dong, W., Song, Y.-H., & Schulze, J. 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Simulation study of mode transitions induced by external control parameters in capacitively coupled oxygen discharges. <i>Plasma Sources Science and Technology<\/i>, <i>34<\/i>(9), 095011. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/ae05c9'>https:\/\/doi.org\/10.1088\/1361-6595\/ae05c9<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=7Q3CFXGQ' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-MA7H6IGH\" data-zp-author-date='Klich-et-al.-2025-04-01' data-zp-date-author='2025-04-01-Klich-et-al.' data-zp-date='2025-04-01' data-zp-year='2025' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Klich, M., Schulenberg, D., Wilczek, S., <strong>Vass<\/strong>, M., Bolles, T., Korolov, I., Schulze, J., Mussenbrock, T., & Brinkmann, R. P. (2025). Electron dynamics of three distinct discharge modes of a cross-field atmospheric pressure plasma jet. <i>Plasma Sources Science and Technology<\/i>, <i>34<\/i>(4), 045012. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/adc7d8'>https:\/\/doi.org\/10.1088\/1361-6595\/adc7d8<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=MA7H6IGH' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-8Y49VAPM\" data-zp-author-date='Masheyeva-et-al.-2025-04-01' data-zp-date-author='2025-04-01-Masheyeva-et-al.' data-zp-date='2025-04-01' data-zp-year='2025' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Masheyeva, R., <strong>Vass<\/strong>, M., Myrzaly, M., Tian, C.-B., Dzhumagulova, K., Schulze, J., Donk\u00f3, Z., & Hartmann, P. 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Experimental and numerical study of the ionization-attachment instability in an O<sub>2<\/sub> capacitively coupled radio frequency plasma. <i>Plasma Sources Science and Technology<\/i>, <i>34<\/i>(4), 045017. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/adcb6b'>https:\/\/doi.org\/10.1088\/1361-6595\/adcb6b<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=8Y49VAPM' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-8Q9XEFD4\" data-zp-author-date='Luo-et-al.-2025-01-01' data-zp-date-author='2025-01-01-Luo-et-al.' data-zp-date='2025-01-01' data-zp-year='2025' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Luo, L.-Y., Donk\u00f3, Z., Masheyeva, R., <strong>Vass<\/strong>, M., Li, H.-P., & Hartmann, P. 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The quenching effect of oxygen addition on an argon capacitively coupled plasma: experimental and computational study of the argon metastable atom kinetics. <i>Plasma Sources Science and Technology<\/i>, <i>34<\/i>(1), 015009. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/ada8d8'>https:\/\/doi.org\/10.1088\/1361-6595\/ada8d8<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=8Q9XEFD4' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-S8L2C6CK\" data-zp-author-date='Vass-et-al.-2024-11-01' data-zp-date-author='2024-11-01-Vass-et-al.' data-zp-date='2024-11-01' data-zp-year='2024' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\"><strong>Vass<\/strong>, M., Schulenberg, D., Donk\u00f3, Z., Hartmann, P., Steuer, D., B\u00f6ke, M., Schulz-von Der Gathen, V., Korolov, I., Mussenbrock, T., & Schulze, J. (2024). Energy efficiency of reactive species generation in radio frequency atmospheric pressure plasma jets driven by tailored voltage waveforms in a He\/O<sub>2<\/sub> mixture. <i>Plasma Sources Science and Technology<\/i>, <i>33<\/i>(11), 11LT01. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/ad8ae7'>https:\/\/doi.org\/10.1088\/1361-6595\/ad8ae7<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=S8L2C6CK' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-JRCKJY5J\" data-zp-author-date='Tian-et-al.-2024-07-01' data-zp-date-author='2024-07-01-Tian-et-al.' data-zp-date='2024-07-01' data-zp-year='2024' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Tian, C.-B., Wang, L., <strong>Vass<\/strong>, M., Wang, X.-K., Dong, W., Song, Y.-H., Wang, Y.-N., & Schulze, J. 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The detachment-induced mode in electronegative capacitively coupled radio-frequency plasmas. <i>Plasma Sources Science and Technology<\/i>, <i>33<\/i>(7), 075008. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/ad5df8'>https:\/\/doi.org\/10.1088\/1361-6595\/ad5df8<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=JRCKJY5J' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-H3ZCWCPF\" data-zp-author-date='Masheyeva-et-al.-2024-04-01' data-zp-date-author='2024-04-01-Masheyeva-et-al.' data-zp-date='2024-04-01' data-zp-year='2024' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Masheyeva, R., <strong>Vass<\/strong>, M., Wang, X.-K., Liu, Y.-X., Derzsi, A., Hartmann, P., Schulze, J., & Donk\u00f3, Z. 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Electron power absorption in CF <sub>4<\/sub> capacitively coupled RF plasmas operated in the striation mode. <i>Plasma Sources Science and Technology<\/i>, <i>33<\/i>(4), 045019. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/ad3c69'>https:\/\/doi.org\/10.1088\/1361-6595\/ad3c69<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=H3ZCWCPF' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-5X5H5NC7\" data-zp-author-date='Derzsi-et-al.-2024-02-01' data-zp-date-author='2024-02-01-Derzsi-et-al.' data-zp-date='2024-02-01' data-zp-year='2024' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Derzsi, A., <strong>Vass<\/strong>, M., Masheyeva, R., Horv\u00e1th, B., Donk\u00f3, Z., & Hartmann, P. (2024). Frequency-dependent electron power absorption mode transitions in capacitively coupled argon-oxygen plasmas. <i>Plasma Sources Science and Technology<\/i>, <i>33<\/i>(2), 025005. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/ad1fd5'>https:\/\/doi.org\/10.1088\/1361-6595\/ad1fd5<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=5X5H5NC7' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-866TPMIV\" data-zp-author-date='Schulenberg-et-al.-2024-01-12' data-zp-date-author='2024-01-12-Schulenberg-et-al.' data-zp-date='2024-01-12' data-zp-year='2024' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Schulenberg, D. A., <strong>Vass<\/strong>, M., Klich, M., Donk\u00f3, Z., Klotz, J., Bibinov, N., Mussenbrock, T., & Schulze, J. (2024). Mode Transition Induced by Gas Heating Along the Discharge Channel in Capacitively Coupled Atmospheric Pressure Micro Plasma Jets. <i>Plasma Chemistry and Plasma Processing<\/i>. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1007\/s11090-023-10444-6'>https:\/\/doi.org\/10.1007\/s11090-023-10444-6<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=866TPMIV' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-IL8X4JW5\" data-zp-author-date='Vass-et-al.-2024-01-01' data-zp-date-author='2024-01-01-Vass-et-al.' data-zp-date='2024-01-01' data-zp-year='2024' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\"><strong>Vass<\/strong>, M., Schulenberg, D., Donk\u00f3, Z., Korolov, I., Hartmann, P., Schulze, J., & Mussenbrock, T. 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A new 2D fluid-MC hybrid approach for simulating nonequilibrium atmospheric pressure plasmas: density distribution of atomic oxygen in radio-frequency plasma jets in He\/O <sub>2<\/sub> mixtures. <i>Plasma Sources Science and Technology<\/i>, <i>33<\/i>(1), 015012. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/ad1f37'>https:\/\/doi.org\/10.1088\/1361-6595\/ad1f37<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=IL8X4JW5' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-PFHKJZ3C\" data-zp-author-date='Dujko-et-al.-2023-02-01' data-zp-date-author='2023-02-01-Dujko-et-al.' data-zp-date='2023-02-01' data-zp-year='2023' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Dujko, S., Bo\u0161njakovi\u0107, D., <strong>Vass<\/strong>, M., Hartmann, P., Korolov, I., Pinh\u00e3o, N. R., Loffhagen, D., & Donk\u00f3, Z. (2023). Scanning drift tube measurements and kinetic studies of electron transport in CO. <i>Plasma Sources Science and Technology<\/i>, <i>32<\/i>(2), 025014. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/acbc96'>https:\/\/doi.org\/10.1088\/1361-6595\/acbc96<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=PFHKJZ3C' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-28DCYBSA\" data-zp-author-date='Liu-et-al.-2023-02-01' data-zp-date-author='2023-02-01-Liu-et-al.' data-zp-date='2023-02-01' data-zp-year='2023' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Liu, Y., <strong>Vass<\/strong>, M., H\u00fcbner, G., Schulenberg, D., Hemke, T., Bischoff, L., Chur, S., Steuer, D., Golda, J., B\u00f6ke, M., Schulze, J., Korolov, I., & Mussenbrock, T. 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Local enhancement of electron heating and neutral species generation in radio-frequency micro-atmospheric pressure plasma jets: the effects of structured electrode topologies. <i>Plasma Sources Science and Technology<\/i>, <i>32<\/i>(2), 025012. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/acb9b8'>https:\/\/doi.org\/10.1088\/1361-6595\/acb9b8<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=28DCYBSA' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-TZ2KXQWQ\" data-zp-author-date='Vass-et-al.-2022-11-01' data-zp-date-author='2022-11-01-Vass-et-al.' data-zp-date='2022-11-01' data-zp-year='2022' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\"><strong>Vass<\/strong>, M., Wang, L., Wilczek, S., Lafleur, T., Brinkmann, R. P., Donk\u00f3, Z., & Schulze, J. (2022). Frequency coupling in low-pressure dual-frequency capacitively coupled plasmas revisited based on the Boltzmann term analysis. <i>Plasma Sources Science and Technology<\/i>, <i>31<\/i>(11), 115004. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/ac9754'>https:\/\/doi.org\/10.1088\/1361-6595\/ac9754<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=TZ2KXQWQ' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-DNM8AMLS\" data-zp-author-date='Wang-et-al.-2022-10-01' data-zp-date-author='2022-10-01-Wang-et-al.' data-zp-date='2022-10-01' data-zp-year='2022' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Wang, L., <strong>Vass<\/strong>, M., Lafleur, T., Donk\u00f3, Z., Song, Y.-H., & Schulze, J. (2022). On the validity of the classical plasma conductivity in capacitive RF discharges. <i>Plasma Sources Science and Technology<\/i>, <i>31<\/i>(10), 105013. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/ac95c1'>https:\/\/doi.org\/10.1088\/1361-6595\/ac95c1<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=DNM8AMLS' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-4SKI9N9V\" data-zp-author-date='Wang-et-al.-2022-06-01' data-zp-date-author='2022-06-01-Wang-et-al.' data-zp-date='2022-06-01' data-zp-year='2022' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Wang, L., <strong>Vass<\/strong>, M., Donk\u00f3, Z., Hartmann, P., Derzsi, A., Song, Y.-H., & Schulze, J. (2022). Electropositive core in electronegative magnetized capacitive radio frequency plasmas. <i>Plasma Sources Science and Technology<\/i>, <i>31<\/i>(6), 06LT01. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/ac5ec7'>https:\/\/doi.org\/10.1088\/1361-6595\/ac5ec7<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=4SKI9N9V' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-B3AMW3FU\" data-zp-author-date='Vass-et-al.-2022-06-01' data-zp-date-author='2022-06-01-Vass-et-al.' data-zp-date='2022-06-01' data-zp-year='2022' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\"><strong>Vass<\/strong>, M., Palla, P., & Hartmann, P. (2022). Revisiting the numerical stability\/accuracy conditions of explicit PIC\/MCC simulations of low-temperature gas discharges. <i>Plasma Sources Science and Technology<\/i>, <i>31<\/i>(6), 064001. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/ac6e85'>https:\/\/doi.org\/10.1088\/1361-6595\/ac6e85<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=B3AMW3FU' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-QAQXJM7R\" data-zp-author-date='Vass-et-al.-2022-04-01' data-zp-date-author='2022-04-01-Vass-et-al.' data-zp-date='2022-04-01' data-zp-year='2022' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\"><strong>Vass<\/strong>, M., Wilczek, S., Derzsi, A., Horv\u00e1th, B., Hartmann, P., & Donk\u00f3, Z. (2022). Evolution of the bulk electric field in capacitively coupled argon plasmas at intermediate pressures. <i>Plasma Sources Science and Technology<\/i>, <i>31<\/i>(4), 045017. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/ac6361'>https:\/\/doi.org\/10.1088\/1361-6595\/ac6361<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=QAQXJM7R' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-WW2GEW7H\" data-zp-author-date='Derzsi-et-al.-2022' data-zp-date-author='2022-Derzsi-et-al.' data-zp-date='2022' data-zp-year='2022' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Derzsi, A., Hartmann, P., <strong>Vass<\/strong>, M., Horv\u00e1th, B., Gyulai, M., Korolov, I., Schulze, J., & Donko, Z. (2022). Electron power absorption in capacitively coupled neon\u2013oxygen plasmas: a comparison of experimental and computational results. <i>Plasma Sources Sci. Technol.<\/i>, 22. <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=WW2GEW7H' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-XRBZUDNL\" data-zp-author-date='Vass-et-al.-2021-10-01' data-zp-date-author='2021-10-01-Vass-et-al.' data-zp-date='2021-10-01' data-zp-year='2021' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\"><strong>Vass<\/strong>, M., Wilczek, S., Schulze, J., & Donk\u00f3, Z. (2021). Electron power absorption in micro atmospheric pressure plasma jets driven by tailored voltage waveforms in He\/N <sub>2<\/sub>. <i>Plasma Sources Science and Technology<\/i>, <i>30<\/i>(10), 105010. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/ac278c'>https:\/\/doi.org\/10.1088\/1361-6595\/ac278c<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=XRBZUDNL' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-NW38IHAA\" data-zp-author-date='Wang-et-al.-2021-10-01' data-zp-date-author='2021-10-01-Wang-et-al.' data-zp-date='2021-10-01' data-zp-year='2021' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Wang, L., <strong>Vass<\/strong>, M., Donk\u00f3, Z., Hartmann, P., Derzsi, A., Song, Y.-H., & Schulze, J. (2021). Magnetic attenuation of the self-excitation of the plasma series resonance in low-pressure capacitively coupled discharges. <i>Plasma Sources Science and Technology<\/i>, <i>30<\/i>(10), 10LT01. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/ac287b'>https:\/\/doi.org\/10.1088\/1361-6595\/ac287b<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=NW38IHAA' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-LXJUBJST\" data-zp-author-date='Donko-et-al.-2021-06-15' data-zp-date-author='2021-06-15-Donko-et-al.' data-zp-date='2021-06-15' data-zp-year='2021' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Donko, Z., Derzsi, A., <strong>Vass<\/strong>, M., Horv\u00e1th, B., Wilczek, S., Hartmann, B., & Hartmann, P. (2021). eduPIC: an introductory particle based code for radio-frequency plasma simulation. <i>Plasma Sources Science and Technology<\/i>. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/ac0b55'>https:\/\/doi.org\/10.1088\/1361-6595\/ac0b55<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=LXJUBJST' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-YH83TJCY\" data-zp-author-date='Vass-et-al.-2021-06-01' data-zp-date-author='2021-06-01-Vass-et-al.' data-zp-date='2021-06-01' data-zp-year='2021' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\"><strong>Vass<\/strong>, M., Wilczek, S., Lafleur, T., Brinkmann, R. P., Donk\u00f3, Z., & Schulze, J. (2021). Collisional electron momentum loss in low temperature plasmas: on the validity of the classical approximation. <i>Plasma Sources Science and Technology<\/i>, <i>30<\/i>(6), 065015. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/ac0486'>https:\/\/doi.org\/10.1088\/1361-6595\/ac0486<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=YH83TJCY' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-RANZ2UEN\" data-zp-author-date='Vass-et-al.-2021-03-01' data-zp-date-author='2021-03-01-Vass-et-al.' data-zp-date='2021-03-01' data-zp-year='2021' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\"><strong>Vass<\/strong>, M., Derzsi, A., Schulze, J., & Donk\u00f3, Z. (2021). Intrasheath electron dynamics in low pressure capacitively coupled plasmas. <i>Plasma Sources Science and Technology<\/i>, <i>30<\/i>(3), 03LT04. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/abe728'>https:\/\/doi.org\/10.1088\/1361-6595\/abe728<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=RANZ2UEN' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-4TS87XV7\" data-zp-author-date='Vass-et-al.-2021-01-21' data-zp-date-author='2021-01-21-Vass-et-al.' data-zp-date='2021-01-21' data-zp-year='2021' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\"><strong>Vass<\/strong>, M., Eg\u00fcz, E., Chachereau, A., Hartmann, P., Korolov, I., H\u00f6sl, A., Bo\u0161njakovi\u0107, D., Dujko, S., Donk\u00f3, Z., & Franck, C. M. (2021). Electron transport parameters in CO <sub>2<\/sub>\u202f: a comparison of two experimental systems and measured data. <i>Journal of Physics D: Applied Physics<\/i>, <i>54<\/i>(3), 035202. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6463\/abbb07'>https:\/\/doi.org\/10.1088\/1361-6463\/abbb07<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=4TS87XV7' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-AA855HKQ\" data-zp-author-date='Vass-et-al.-2020-08-21' data-zp-date-author='2020-08-21-Vass-et-al.' data-zp-date='2020-08-21' data-zp-year='2020' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\"><strong>Vass<\/strong>, M., Wilczek, S., Lafleur, T., Brinkmann, R. P., Donk\u00f3, Z., & Schulze, J. (2020). Observation of dominant Ohmic electron power absorption in capacitively coupled radio frequency argon discharges at low pressure. <i>Plasma Sources Science and Technology<\/i>, <i>29<\/i>(8), 085014. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/aba111'>https:\/\/doi.org\/10.1088\/1361-6595\/aba111<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=AA855HKQ' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-F5HUV3AJ\" data-zp-author-date='Pinh\u00e3o-et-al.-2020-04-02' data-zp-date-author='2020-04-02-Pinh\u00e3o-et-al.' data-zp-date='2020-04-02' data-zp-year='2020' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Pinh\u00e3o, N. R., Loffhagen, D., <strong>Vass<\/strong>, M., Hartmann, P., Korolov, I., Dujko, S., Bo\u0161njakovi\u0107, D., & Donk\u00f3, Z. (2020). Electron swarm parameters in C <sub>2<\/sub> H <sub>2<\/sub> , C <sub>2<\/sub> H <sub>4<\/sub> and C <sub>2<\/sub> H <sub>6<\/sub>\u202f: measurements and kinetic calculations. <i>Plasma Sources Science and Technology<\/i>, <i>29<\/i>(4), 045009. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/ab7841'>https:\/\/doi.org\/10.1088\/1361-6595\/ab7841<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=F5HUV3AJ' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-PETA9DF9\" data-zp-author-date='Vass-et-al.-2020-02-17' data-zp-date-author='2020-02-17-Vass-et-al.' data-zp-date='2020-02-17' data-zp-year='2020' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\"><strong>Vass<\/strong>, M., Wilczek, S., Lafleur, T., Brinkmann, R. P., Donk\u00f3, Z., & Schulze, J. (2020). Electron power absorption in low pressure capacitively coupled electronegative oxygen radio frequency plasmas. <i>Plasma Sources Science and Technology<\/i>, <i>29<\/i>(2), 025019. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/ab5f27'>https:\/\/doi.org\/10.1088\/1361-6595\/ab5f27<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=PETA9DF9' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-YL2CXRA9\" data-zp-author-date='Donk\u00f3-et-al.-2018-10-29' data-zp-date-author='2018-10-29-Donk\u00f3-et-al.' data-zp-date='2018-10-29' data-zp-year='2018' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Donk\u00f3, Z., Derzsi, A., <strong>Vass<\/strong>, M., Schulze, J., Schuengel, E., & Hamaguchi, S. (2018). Ion energy and angular distributions in low-pressure capacitive oxygen RF discharges driven by tailored voltage waveforms. <i>Plasma Sources Science and Technology<\/i>, <i>27<\/i>(10), 104008. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/aae5c3'>https:\/\/doi.org\/10.1088\/1361-6595\/aae5c3<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=YL2CXRA9' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-NEPKQ2HE\" data-zp-author-date='Vass-et-al.-2017-05-05' data-zp-date-author='2017-05-05-Vass-et-al.' data-zp-date='2017-05-05' data-zp-year='2017' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\"><strong>Vass<\/strong>, M., Korolov, I., Loffhagen, D., Pinh\u00e3o, N., & Donk\u00f3, Z. (2017). Electron transport parameters in CO <sub>2<\/sub>\u202f: scanning drift tube measurements and kinetic computations. <i>Plasma Sources Science and Technology<\/i>, <i>26<\/i>(6), 065007. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/1361-6595\/aa6789'>https:\/\/doi.org\/10.1088\/1361-6595\/aa6789<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=NEPKQ2HE' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-KVU4ZXSL\" data-zp-author-date='Korolov-et-al.-2016-10-19' data-zp-date-author='2016-10-19-Korolov-et-al.' data-zp-date='2016-10-19' data-zp-year='2016' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Korolov, I., <strong>Vass<\/strong>, M., & Donk\u00f3, Z. (2016). Scanning drift tube measurements of electron transport parameters in different gases: argon, synthetic air, methane and deuterium. <i>Journal of Physics D: Applied Physics<\/i>, <i>49<\/i>(41), 415203. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1088\/0022-3727\/49\/41\/415203'>https:\/\/doi.org\/10.1088\/0022-3727\/49\/41\/415203<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=KVU4ZXSL' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\t\t\t\t<div id=\"zp-ID-444-2825793-SPRUNV44\" data-zp-author-date='Korolov-et-al.-2016' data-zp-date-author='2016-Korolov-et-al.' data-zp-date='2016' data-zp-year='2016' data-zp-itemtype='journalArticle' class=\"zp-Entry zpSearchResultsItem\">\n<div class=\"csl-bib-body\" style=\"line-height: 2; padding-left: 1em; text-indent:-1em;\">\n  <div class=\"csl-entry\">Korolov, I., <strong>Vass<\/strong>, M., Bastykova, N. Kh., & Donk\u00f3, Z. (2016). A scanning drift tube apparatus for spatiotemporal mapping of electron swarms. <i>Review of Scientific Instruments<\/i>, <i>87<\/i>(6), 063102. <a class='zp-DOIURL' href='https:\/\/doi.org\/10.1063\/1.4952747'>https:\/\/doi.org\/10.1063\/1.4952747<\/a> <a title='Cite in RIS Format' class='zp-CiteRIS' data-zp-cite='api_user_id=2825793&item_key=SPRUNV44' href='javascript:void(0);'>Cite<\/a> <\/div>\n<\/div>\n\t\t\t\t<\/div><!-- .zp-Entry .zpSearchResultsItem -->\n\t\t\t<\/div><!-- .zp-zp-SEO-Content -->\n\t\t<\/div><!-- .zp-List -->\n\t<\/div><!--.zp-Zotpress-->","protected":false},"excerpt":{"rendered":"<p>Researcher AddressRuhr-Uni\u00adver\u00adsi\u00adt\u00e4t Bo\u00adchumFakult\u00e4t f\u00fcr Elektrotechnik und InformationstechnikAngewandte Elektrodynamik und PlasmatechnikUni\u00adver\u00adsi\u00adt\u00e4ts\u00adstra\u00ad\u00dfe 150D-44801 Bo\u00adchum, Germany RoomID 1\/114 Phone+49 234 32 22766 Emailvass(at)aept.rub.de Publications<\/p>","protected":false},"author":3,"featured_media":0,"parent":0,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"footnotes":""},"class_list":["post-444","page","type-page","status-publish","hentry"],"_links":{"self":[{"href":"https:\/\/aept.blogs.ruhr-uni-bochum.de\/de\/wp-json\/wp\/v2\/pages\/444","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/aept.blogs.ruhr-uni-bochum.de\/de\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/aept.blogs.ruhr-uni-bochum.de\/de\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/aept.blogs.ruhr-uni-bochum.de\/de\/wp-json\/wp\/v2\/users\/3"}],"replies":[{"embeddable":true,"href":"https:\/\/aept.blogs.ruhr-uni-bochum.de\/de\/wp-json\/wp\/v2\/comments?post=444"}],"version-history":[{"count":2,"href":"https:\/\/aept.blogs.ruhr-uni-bochum.de\/de\/wp-json\/wp\/v2\/pages\/444\/revisions"}],"predecessor-version":[{"id":447,"href":"https:\/\/aept.blogs.ruhr-uni-bochum.de\/de\/wp-json\/wp\/v2\/pages\/444\/revisions\/447"}],"wp:attachment":[{"href":"https:\/\/aept.blogs.ruhr-uni-bochum.de\/de\/wp-json\/wp\/v2\/media?parent=444"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}