	
{"id":806,"date":"2024-09-25T10:17:35","date_gmt":"2024-09-25T10:17:35","guid":{"rendered":"https:\/\/biblioconf.lpgp.universite-paris-saclay.fr\/wordpress\/?page_id=806"},"modified":"2024-11-12T15:29:25","modified_gmt":"2024-11-12T15:29:25","slug":"","status":"publish","type":"page","link":"https:\/\/www.lpgp-wp1.universite-paris-saclay.fr\/en\/ex-2-plasma-based-coatings-processes-for-nanocomposite-materials\/","title":{"rendered":"Ex.2 PLASMA-BLASED COATINGS PROCESSES FOR NANOCOMPOSITE MATERIALS","raw":"Ex.2 PLASMA-BLASED COATINGS PROCESSES FOR NANOCOMPOSITE MATERIALS"},"content":{"rendered":"\n<h1 class=\"wp-block-heading has-text-align-center\" style=\"font-style:normal;font-weight:300\">Ex.2 PLASMA-BLASED COATINGS PROCESSES FOR NANOCOMPOSITE MATERIALS<\/h1>\n\n\n\n<hr class=\"wp-block-separator has-text-color has-lightgrey-color has-alpha-channel-opacity has-lightgrey-background-color has-background\"\/>\n\n\n\n<p class=\"has-secondary-color has-text-color has-link-color wp-elements-914f46b7b03b353089a6c50ee35be0b8\" style=\"font-style:normal;font-weight:600\">CONTACT : JEAN-PASCAL BORRA&nbsp;<\/p>\n\n\n\n<p>In-flight coating of NP by post-DBD reactive PE-CVD of gas precursor for thermo-stable SiO2 coating of photocatalytic NP (2015-19, 1 PhD in collaboration with Prof.Weber from TU Clausthal, [<a href=\"https:\/\/www.lpgp.universite-paris-saclay.fr\/fr\/equipes-de-recherche\/dea#12\">12<\/a>, <a href=\"https:\/\/www.lpgp.universite-paris-saclay.fr\/fr\/equipes-de-recherche\/dea#T34\">T34<\/a>])<\/p>\n\n\n\n<p>Coatings of agglomerated NP is used to improve thermostability to limit the surface reduction by melting of catalytic agglomerates. Silicon oxide is one of the preferred nontoxic and almost inert coating materials. Liquid coating methods imply washing, drying and separation steps, with residual impurities from solvents contaminating the final solid coatings. Therefore, gas-phase coating methods are generally preferred (e.g. atomic layer deposition and plasma enhanced chemical vapor deposition PE-CVD). Here, a plasma-based aerosol process has been proposed and validated for in-flight coating of particles by post-Plasma SiOx coating.<\/p>\n\n\n\n<p>It has been shown that non-thermal plasma filaments induced in a dielectric barrier discharge (DBD) at atmospheric pressure trigger post-DBD gas phase reactions with tetraethyl orthosilicate (TEOS) precursor downstream of the DBD.<\/p>\n\n\n\n<figure class=\"wp-block-image aligncenter size-full\"><img loading=\"lazy\" decoding=\"async\" width=\"480\" height=\"360\" src=\"https:\/\/biblioconf.lpgp.universite-paris-saclay.fr\/wordpress\/wp-content\/uploads\/2024\/09\/dea-ph3-re-reactive-post-dbd-cvd.png\" alt=\"\" class=\"wp-image-807\" srcset=\"https:\/\/www.lpgp-wp1.universite-paris-saclay.fr\/wp-content\/uploads\/2024\/09\/dea-ph3-re-reactive-post-dbd-cvd.png 480w, https:\/\/www.lpgp-wp1.universite-paris-saclay.fr\/wp-content\/uploads\/2024\/09\/dea-ph3-re-reactive-post-dbd-cvd-300x225.png 300w\" sizes=\"auto, (max-width: 480px) 100vw, 480px\" \/><figcaption class=\"wp-element-caption\">Fig: (left) Set-up for post-DBD in-flight SiOx coating of NP :<br>1) Pt- catalytic NP production by spark-surface interaction, followed by 2-3) post-DBD Reactive Nucleation also called PE-CVD ; (right) size distributions of Pt- NP from sparks only, compared with the same coated aerosol with DBD on for 2 TEOS concentrations<\/figcaption><\/figure>\n\n\n\n<p>Such post-DBD injection of gaseous organo-silicon precursor avoids electrode coating and discharge evolution to achieve a steady fluxes of active species downstream the so-stabilized DBD, with subsequent controlled thickness of SiOx coatings, versus TEOS concentration and reaction duration.<\/p>\n\n\n\n<figure class=\"wp-block-image aligncenter size-full\"><img loading=\"lazy\" decoding=\"async\" width=\"479\" height=\"248\" src=\"https:\/\/biblioconf.lpgp.universite-paris-saclay.fr\/wordpress\/wp-content\/uploads\/2024\/09\/dea-ph4-re-post-dbd-pe-cvd-of-nm-siox-coating-from-teos.png\" alt=\"\" class=\"wp-image-808\" srcset=\"https:\/\/www.lpgp-wp1.universite-paris-saclay.fr\/wp-content\/uploads\/2024\/09\/dea-ph4-re-post-dbd-pe-cvd-of-nm-siox-coating-from-teos.png 479w, https:\/\/www.lpgp-wp1.universite-paris-saclay.fr\/wp-content\/uploads\/2024\/09\/dea-ph4-re-post-dbd-pe-cvd-of-nm-siox-coating-from-teos-300x155.png 300w\" sizes=\"auto, (max-width: 479px) 100vw, 479px\" \/><\/figure>\n\n\n\n<p>Homogeneous solid SiOx coatings of spherical and agglomerated metal and metal oxide nanoparticles (Pt, CuO, TiO2) have been achieved with controlled thickness from nanometer to micrometer.<\/p>\n\n\n\n<p>The reader can find details on (i) operating conditions to be tuned to cover preferentially the interparticle contact zones between primary particles of agglomerates, (ii) improved thermal stability, related to higher sintering temperatures of so-coated agglomerates of catalytic Pt-NP, as well as (iii) tunable photoactivity catalytic Pt-NP agglomerates.<\/p>\n\n\n\n<div style=\"height:100px\" aria-hidden=\"true\" class=\"wp-block-spacer\"><\/div>\n\n\n\n<main class=\"wp-block-group alignfull site-content has-primary-background-color has-background has-global-padding is-layout-constrained wp-block-group-is-layout-constrained\" style=\"margin-top:0;padding-top:var(--wp--preset--spacing--x-large);padding-bottom:var(--wp--preset--spacing--x-large)\">\n<div class=\"wp-block-group is-style-default is-layout-flow wp-block-group-is-layout-flow\">\n<div style=\"height:32px\" aria-hidden=\"true\" class=\"wp-block-spacer\"><\/div>\n\n\n\n<div class=\"wp-block-columns is-layout-flex wp-container-core-columns-is-layout-2 wp-block-columns-is-layout-flex\">\n<div class=\"wp-block-column has-white-color has-text-color has-link-color wp-elements-4af94e36aa5113a79b738bf7e0bf9d03 is-layout-flow 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(max-width: 712px) 100vw, 712px\" \/><\/figure>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/main>\n","protected":false,"raw":"<!-- wp:heading {\"textAlign\":\"center\",\"level\":1,\"style\":{\"typography\":{\"fontStyle\":\"normal\",\"fontWeight\":\"300\"}}} -->\n<h1 class=\"wp-block-heading has-text-align-center\" style=\"font-style:normal;font-weight:300\">Ex.2 PLASMA-BLASED COATINGS PROCESSES FOR NANOCOMPOSITE MATERIALS<\/h1>\n<!-- \/wp:heading -->\n\n<!-- wp:separator {\"backgroundColor\":\"lightgrey\"} -->\n<hr class=\"wp-block-separator has-text-color has-lightgrey-color has-alpha-channel-opacity has-lightgrey-background-color has-background\"\/>\n<!-- \/wp:separator -->\n\n<!-- wp:paragraph {\"style\":{\"elements\":{\"link\":{\"color\":{\"text\":\"var:preset|color|secondary\"}}},\"typography\":{\"fontStyle\":\"normal\",\"fontWeight\":\"600\"}},\"textColor\":\"secondary\"} -->\n<p class=\"has-secondary-color has-text-color has-link-color\" style=\"font-style:normal;font-weight:600\">CONTACT : JEAN-PASCAL BORRA&nbsp;<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p>In-flight coating of NP by post-DBD reactive PE-CVD of gas precursor for thermo-stable SiO2 coating of photocatalytic NP (2015-19, 1 PhD in collaboration with Prof.Weber from TU Clausthal, [<a href=\"https:\/\/www.lpgp.universite-paris-saclay.fr\/fr\/equipes-de-recherche\/dea#12\">12<\/a>, <a href=\"https:\/\/www.lpgp.universite-paris-saclay.fr\/fr\/equipes-de-recherche\/dea#T34\">T34<\/a>])<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p>Coatings of agglomerated NP is used to improve thermostability to limit the surface reduction by melting of catalytic agglomerates. Silicon oxide is one of the preferred nontoxic and almost inert coating materials. Liquid coating methods imply washing, drying and separation steps, with residual impurities from solvents contaminating the final solid coatings. Therefore, gas-phase coating methods are generally preferred (e.g. atomic layer deposition and plasma enhanced chemical vapor deposition PE-CVD). Here, a plasma-based aerosol process has been proposed and validated for in-flight coating of particles by post-Plasma SiOx coating.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p>It has been shown that non-thermal plasma filaments induced in a dielectric barrier discharge (DBD) at atmospheric pressure trigger post-DBD gas phase reactions with tetraethyl orthosilicate (TEOS) precursor downstream of the DBD.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:image {\"id\":807,\"sizeSlug\":\"full\",\"linkDestination\":\"none\",\"align\":\"center\"} -->\n<figure class=\"wp-block-image aligncenter size-full\"><img src=\"https:\/\/biblioconf.lpgp.universite-paris-saclay.fr\/wordpress\/wp-content\/uploads\/2024\/09\/dea-ph3-re-reactive-post-dbd-cvd.png\" alt=\"\" class=\"wp-image-807\"\/><figcaption class=\"wp-element-caption\">Fig: (left) Set-up for post-DBD in-flight SiOx coating of NP :<br>1) Pt- catalytic NP production by spark-surface interaction, followed by 2-3) post-DBD Reactive Nucleation also called PE-CVD ; (right) size distributions of Pt- NP from sparks only, compared with the same coated aerosol with DBD on for 2 TEOS concentrations<\/figcaption><\/figure>\n<!-- \/wp:image -->\n\n<!-- wp:paragraph -->\n<p>Such post-DBD injection of gaseous organo-silicon precursor avoids electrode coating and discharge evolution to achieve a steady fluxes of active species downstream the so-stabilized DBD, with subsequent controlled thickness of SiOx coatings, versus TEOS concentration and reaction duration.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:image {\"id\":808,\"sizeSlug\":\"full\",\"linkDestination\":\"none\",\"align\":\"center\"} -->\n<figure class=\"wp-block-image aligncenter size-full\"><img src=\"https:\/\/biblioconf.lpgp.universite-paris-saclay.fr\/wordpress\/wp-content\/uploads\/2024\/09\/dea-ph4-re-post-dbd-pe-cvd-of-nm-siox-coating-from-teos.png\" alt=\"\" class=\"wp-image-808\"\/><\/figure>\n<!-- \/wp:image -->\n\n<!-- wp:paragraph -->\n<p>Homogeneous solid SiOx coatings of spherical and agglomerated metal and metal oxide nanoparticles (Pt, CuO, TiO2) have been achieved with controlled thickness from nanometer to micrometer.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p>The reader can find details on (i) operating conditions to be tuned to cover preferentially the interparticle contact zones between primary particles of agglomerates, (ii) improved thermal stability, related to higher sintering temperatures of so-coated agglomerates of catalytic Pt-NP, as well as (iii) tunable photoactivity catalytic Pt-NP agglomerates.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:spacer -->\n<div style=\"height:100px\" aria-hidden=\"true\" class=\"wp-block-spacer\"><\/div>\n<!-- \/wp:spacer -->\n\n<!-- wp:group {\"tagName\":\"main\",\"metadata\":{\"categories\":[\"featured\"],\"patternName\":\"inspiro\/section-with-text\",\"name\":\"Section with 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has-text-color has-link-color\">91405 Orsay Cedex<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"style\":{\"elements\":{\"link\":{\"color\":{\"text\":\"var:preset|color|white\"}}}},\"textColor\":\"white\"} -->\n<p class=\"has-white-color has-text-color has-link-color\">Phone: (33) 01 69 15 72 51<\/p>\n<!-- \/wp:paragraph --><\/div>\n<!-- \/wp:column -->\n\n<!-- wp:column {\"style\":{\"spacing\":{\"padding\":{\"top\":\"0px\",\"right\":\"155px\",\"bottom\":\"0px\",\"left\":\"155px\"},\"blockGap\":\"0\"},\"border\":{\"width\":\"0px\",\"style\":\"none\"},\"elements\":{\"link\":{\"color\":{\"text\":\"var:preset|color|white\"}}}},\"textColor\":\"white\"} -->\n<div class=\"wp-block-column has-white-color has-text-color has-link-color\" style=\"border-style:none;border-width:0px;padding-top:0px;padding-right:155px;padding-bottom:0px;padding-left:155px\"><!-- wp:paragraph -->\n<p><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"textColor\":\"white\"} -->\n<p class=\"has-white-color 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-->\n\n<!-- wp:paragraph {\"style\":{\"elements\":{\"link\":{\"color\":{\"text\":\"var:preset|color|white\"}}}},\"textColor\":\"white\"} -->\n<p class=\"has-white-color has-text-color has-link-color\"><a href=\"https:\/\/biblioconf.lpgp.universite-paris-saclay.fr\/wordpress\/?page_id=93\">Access<\/a><\/p>\n<!-- \/wp:paragraph --><\/div>\n<!-- \/wp:column -->\n\n<!-- wp:column {\"style\":{\"spacing\":{\"padding\":{\"top\":\"0px\",\"right\":\"0px\",\"bottom\":\"0px\",\"left\":\"0px\"}},\"border\":{\"width\":\"0px\",\"style\":\"none\"}}} -->\n<div class=\"wp-block-column\" style=\"border-style:none;border-width:0px;padding-top:0px;padding-right:0px;padding-bottom:0px;padding-left:0px\"><!-- wp:heading {\"level\":3,\"textColor\":\"white\"} -->\n<h3 class=\"wp-block-heading has-white-color has-text-color\">SOCIAL NETWORKS<\/h3>\n<!-- \/wp:heading -->\n\n<!-- wp:separator {\"className\":\"is-style-wide\",\"backgroundColor\":\"white\"} -->\n<hr class=\"wp-block-separator has-text-color has-white-color has-alpha-channel-opacity has-white-background-color has-background is-style-wide\"\/>\n<!-- \/wp:separator -->\n\n<!-- wp:social-links -->\n<ul class=\"wp-block-social-links\"><!-- wp:social-link {\"url\":\"https:\/\/fr.linkedin.com\/company\/l-p-g-p\",\"service\":\"linkedin\"} \/-->\n\n<!-- wp:social-link {\"url\":\"x.com\/@lpgp_idf\",\"service\":\"x\"} \/-->\n\n<!-- wp:social-link {\"url\":\"https:\/\/social.sciences.re\/@lpgp\",\"service\":\"mastodon\"} \/--><\/ul>\n<!-- \/wp:social-links -->\n\n<!-- wp:group {\"layout\":{\"type\":\"flex\",\"flexWrap\":\"nowrap\"}} -->\n<div class=\"wp-block-group\"><!-- wp:image {\"id\":536,\"width\":\"114px\",\"height\":\"auto\",\"sizeSlug\":\"large\",\"linkDestination\":\"none\"} -->\n<figure class=\"wp-block-image size-large is-resized\"><img src=\"http:\/\/biblioconf.lpgp.universite-paris-saclay.fr\/wordpress\/wp-content\/uploads\/2024\/09\/LOGO_CNRS_BLANC-1024x1024.png\" alt=\"\" class=\"wp-image-536\" style=\"width:114px;height:auto\"\/><\/figure>\n<!-- \/wp:image -->\n\n<!-- wp:image {\"id\":535,\"width\":\"223px\",\"height\":\"auto\",\"sizeSlug\":\"full\",\"linkDestination\":\"none\"} -->\n<figure class=\"wp-block-image size-full is-resized\"><img src=\"http:\/\/biblioconf.lpgp.universite-paris-saclay.fr\/wordpress\/wp-content\/uploads\/2024\/09\/Logotype-UPSaclay_BLANC.png\" alt=\"\" class=\"wp-image-535\" style=\"width:223px;height:auto\"\/><\/figure>\n<!-- \/wp:image --><\/div>\n<!-- \/wp:group --><\/div>\n<!-- \/wp:column --><\/div>\n<!-- \/wp:columns --><\/div>\n<!-- \/wp:group --><\/main>\n<!-- \/wp:group -->"},"excerpt":{"rendered":"","protected":false,"raw":""},"author":1,"featured_media":0,"parent":0,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"_en_post_content":"<!-- wp:heading {\"textAlign\":\"center\",\"level\":1,\"style\":{\"typography\":{\"fontStyle\":\"normal\",\"fontWeight\":\"300\"}}} -->\n<h1 class=\"wp-block-heading has-text-align-center\" style=\"font-style:normal;font-weight:300\">Ex.2 PLASMA-BLASED COATINGS PROCESSES FOR NANOCOMPOSITE MATERIALS<\/h1>\n<!-- \/wp:heading -->\n\n<!-- wp:separator {\"backgroundColor\":\"lightgrey\"} -->\n<hr class=\"wp-block-separator has-text-color has-lightgrey-color has-alpha-channel-opacity has-lightgrey-background-color has-background\"\/>\n<!-- \/wp:separator -->\n\n<!-- wp:paragraph {\"style\":{\"elements\":{\"link\":{\"color\":{\"text\":\"var:preset|color|secondary\"}}},\"typography\":{\"fontStyle\":\"normal\",\"fontWeight\":\"600\"}},\"textColor\":\"secondary\"} -->\n<p class=\"has-secondary-color has-text-color has-link-color\" style=\"font-style:normal;font-weight:600\">CONTACT : JEAN-PASCAL BORRA&nbsp;<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p>In-flight coating of NP by post-DBD reactive PE-CVD of gas precursor for thermo-stable SiO2 coating of photocatalytic NP (2015-19, 1 PhD in collaboration with Prof.Weber from TU Clausthal, [<a href=\"https:\/\/www.lpgp.universite-paris-saclay.fr\/fr\/equipes-de-recherche\/dea#12\">12<\/a>, <a href=\"https:\/\/www.lpgp.universite-paris-saclay.fr\/fr\/equipes-de-recherche\/dea#T34\">T34<\/a>])<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p>Coatings of agglomerated NP is used to improve thermostability to limit the surface reduction by melting of catalytic agglomerates. Silicon oxide is one of the preferred nontoxic and almost inert coating materials. Liquid coating methods imply washing, drying and separation steps, with residual impurities from solvents contaminating the final solid coatings. Therefore, gas-phase coating methods are generally preferred (e.g. atomic layer deposition and plasma enhanced chemical vapor deposition PE-CVD). Here, a plasma-based aerosol process has been proposed and validated for in-flight coating of particles by post-Plasma SiOx coating.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p>It has been shown that non-thermal plasma filaments induced in a dielectric barrier discharge (DBD) at atmospheric pressure trigger post-DBD gas phase reactions with tetraethyl orthosilicate (TEOS) precursor downstream of the DBD.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:image {\"id\":807,\"sizeSlug\":\"full\",\"linkDestination\":\"none\",\"align\":\"center\"} -->\n<figure class=\"wp-block-image aligncenter size-full\"><img src=\"https:\/\/biblioconf.lpgp.universite-paris-saclay.fr\/wordpress\/wp-content\/uploads\/2024\/09\/dea-ph3-re-reactive-post-dbd-cvd.png\" alt=\"\" class=\"wp-image-807\"\/><figcaption class=\"wp-element-caption\">Fig: (left) Set-up for post-DBD in-flight SiOx coating of NP :<br>1) Pt- catalytic NP production by spark-surface interaction, followed by 2-3) post-DBD Reactive Nucleation also called PE-CVD ; (right) size distributions of Pt- NP from sparks only, compared with the same coated aerosol with DBD on for 2 TEOS concentrations<\/figcaption><\/figure>\n<!-- \/wp:image -->\n\n<!-- wp:paragraph -->\n<p>Such post-DBD injection of gaseous organo-silicon precursor avoids electrode coating and discharge evolution to achieve a steady fluxes of active species downstream the so-stabilized DBD, with subsequent controlled thickness of SiOx coatings, versus TEOS concentration and reaction duration.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:image {\"id\":808,\"sizeSlug\":\"full\",\"linkDestination\":\"none\",\"align\":\"center\"} -->\n<figure class=\"wp-block-image aligncenter size-full\"><img src=\"https:\/\/biblioconf.lpgp.universite-paris-saclay.fr\/wordpress\/wp-content\/uploads\/2024\/09\/dea-ph4-re-post-dbd-pe-cvd-of-nm-siox-coating-from-teos.png\" alt=\"\" class=\"wp-image-808\"\/><\/figure>\n<!-- \/wp:image -->\n\n<!-- wp:paragraph -->\n<p>Homogeneous solid SiOx coatings of spherical and agglomerated metal and metal oxide nanoparticles (Pt, CuO, TiO2) have been achieved with controlled thickness from nanometer to micrometer.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p>The reader can find details on (i) operating conditions to be tuned to cover preferentially the interparticle contact zones between primary particles of agglomerates, (ii) improved thermal stability, related to higher sintering temperatures of so-coated agglomerates of catalytic Pt-NP, as well as (iii) tunable photoactivity catalytic Pt-NP agglomerates.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:spacer -->\n<div style=\"height:100px\" aria-hidden=\"true\" class=\"wp-block-spacer\"><\/div>\n<!-- \/wp:spacer -->\n\n<!-- wp:group {\"tagName\":\"main\",\"metadata\":{\"categories\":[\"featured\"],\"patternName\":\"inspiro\/section-with-text\",\"name\":\"Section with text\"},\"align\":\"full\",\"className\":\"site-content\",\"style\":{\"spacing\":{\"margin\":{\"top\":\"0\"},\"padding\":{\"top\":\"var:preset|spacing|x-large\",\"bottom\":\"var:preset|spacing|x-large\"}}},\"backgroundColor\":\"primary\",\"layout\":{\"inherit\":true,\"type\":\"constrained\"}} -->\n<main class=\"wp-block-group alignfull site-content has-primary-background-color has-background\" style=\"margin-top:0;padding-top:var(--wp--preset--spacing--x-large);padding-bottom:var(--wp--preset--spacing--x-large)\"><!-- wp:group {\"className\":\"is-style-default\",\"layout\":{\"type\":\"default\"}} -->\n<div class=\"wp-block-group is-style-default\"><!-- wp:spacer {\"height\":\"32px\"} -->\n<div style=\"height:32px\" aria-hidden=\"true\" class=\"wp-block-spacer\"><\/div>\n<!-- \/wp:spacer -->\n\n<!-- wp:columns -->\n<div class=\"wp-block-columns\"><!-- wp:column {\"style\":{\"spacing\":{\"padding\":{\"top\":\"0px\",\"right\":\"0px\",\"bottom\":\"0px\",\"left\":\"0px\"}},\"border\":{\"width\":\"0px\",\"style\":\"none\"},\"elements\":{\"link\":{\"color\":{\"text\":\"var:preset|color|white\"}}}},\"textColor\":\"white\"} -->\n<div class=\"wp-block-column has-white-color has-text-color has-link-color\" style=\"border-style:none;border-width:0px;padding-top:0px;padding-right:0px;padding-bottom:0px;padding-left:0px\"><!-- wp:heading {\"level\":3,\"textColor\":\"white\"} -->\n<h3 class=\"wp-block-heading has-white-color has-text-color\">Laboratoire de Physique des Gaz et des Plasmas<\/h3>\n<!-- \/wp:heading -->\n\n<!-- wp:paragraph {\"textColor\":\"lightgrey\"} -->\n<p class=\"has-lightgrey-color has-text-color\">Bat 210, rue Henri Becquerel<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"style\":{\"elements\":{\"link\":{\"color\":{\"text\":\"var:preset|color|lightgrey\"}}}},\"textColor\":\"lightgrey\"} -->\n<p class=\"has-lightgrey-color has-text-color has-link-color\">91405 Orsay Cedex<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"style\":{\"elements\":{\"link\":{\"color\":{\"text\":\"var:preset|color|white\"}}}},\"textColor\":\"white\"} -->\n<p class=\"has-white-color has-text-color has-link-color\">Phone: (33) 01 69 15 72 51<\/p>\n<!-- \/wp:paragraph --><\/div>\n<!-- \/wp:column -->\n\n<!-- wp:column {\"style\":{\"spacing\":{\"padding\":{\"top\":\"0px\",\"right\":\"155px\",\"bottom\":\"0px\",\"left\":\"155px\"},\"blockGap\":\"0\"},\"border\":{\"width\":\"0px\",\"style\":\"none\"},\"elements\":{\"link\":{\"color\":{\"text\":\"var:preset|color|white\"}}}},\"textColor\":\"white\"} -->\n<div class=\"wp-block-column has-white-color has-text-color has-link-color\" style=\"border-style:none;border-width:0px;padding-top:0px;padding-right:155px;padding-bottom:0px;padding-left:155px\"><!-- wp:paragraph -->\n<p><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"textColor\":\"white\"} -->\n<p class=\"has-white-color has-text-color\"><a href=\"https:\/\/biblioconf.lpgp.universite-paris-saclay.fr\/wordpress\/?page_id=95\">Terms of use<\/a><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"style\":{\"elements\":{\"link\":{\"color\":{\"text\":\"var:preset|color|white\"}}}},\"textColor\":\"white\"} -->\n<p class=\"has-white-color has-text-color has-link-color\"><a href=\"https:\/\/biblioconf.lpgp.universite-paris-saclay.fr\/wordpress\/?page_id=92\">Directory<\/a><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"style\":{\"elements\":{\"link\":{\"color\":{\"text\":\"var:preset|color|white\"}}}},\"textColor\":\"white\"} -->\n<p class=\"has-white-color has-text-color has-link-color\"><a href=\"https:\/\/biblioconf.lpgp.universite-paris-saclay.fr\/wordpress\/?page_id=94\">Contact<\/a><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"style\":{\"elements\":{\"link\":{\"color\":{\"text\":\"var:preset|color|white\"}}}},\"textColor\":\"white\"} -->\n<p class=\"has-white-color has-text-color has-link-color\"><a href=\"https:\/\/biblioconf.lpgp.universite-paris-saclay.fr\/wordpress\/?page_id=93\">Access<\/a><\/p>\n<!-- \/wp:paragraph --><\/div>\n<!-- \/wp:column -->\n\n<!-- wp:column {\"style\":{\"spacing\":{\"padding\":{\"top\":\"0px\",\"right\":\"0px\",\"bottom\":\"0px\",\"left\":\"0px\"}},\"border\":{\"width\":\"0px\",\"style\":\"none\"}}} -->\n<div class=\"wp-block-column\" style=\"border-style:none;border-width:0px;padding-top:0px;padding-right:0px;padding-bottom:0px;padding-left:0px\"><!-- wp:heading {\"level\":3,\"textColor\":\"white\"} -->\n<h3 class=\"wp-block-heading has-white-color has-text-color\">SOCIAL NETWORKS<\/h3>\n<!-- \/wp:heading -->\n\n<!-- wp:separator {\"className\":\"is-style-wide\",\"backgroundColor\":\"white\"} -->\n<hr class=\"wp-block-separator has-text-color has-white-color has-alpha-channel-opacity has-white-background-color has-background is-style-wide\"\/>\n<!-- \/wp:separator -->\n\n<!-- wp:social-links -->\n<ul class=\"wp-block-social-links\"><!-- wp:social-link {\"url\":\"https:\/\/fr.linkedin.com\/company\/l-p-g-p\",\"service\":\"linkedin\"} \/-->\n\n<!-- wp:social-link {\"url\":\"x.com\/@lpgp_idf\",\"service\":\"x\"} \/-->\n\n<!-- wp:social-link {\"url\":\"https:\/\/social.sciences.re\/@lpgp\",\"service\":\"mastodon\"} \/--><\/ul>\n<!-- \/wp:social-links -->\n\n<!-- wp:group {\"layout\":{\"type\":\"flex\",\"flexWrap\":\"nowrap\"}} -->\n<div class=\"wp-block-group\"><!-- wp:image {\"id\":536,\"width\":\"114px\",\"height\":\"auto\",\"sizeSlug\":\"large\",\"linkDestination\":\"none\"} -->\n<figure class=\"wp-block-image size-large is-resized\"><img src=\"http:\/\/biblioconf.lpgp.universite-paris-saclay.fr\/wordpress\/wp-content\/uploads\/2024\/09\/LOGO_CNRS_BLANC-1024x1024.png\" alt=\"\" class=\"wp-image-536\" style=\"width:114px;height:auto\"\/><\/figure>\n<!-- \/wp:image -->\n\n<!-- wp:image {\"id\":535,\"width\":\"223px\",\"height\":\"auto\",\"sizeSlug\":\"full\",\"linkDestination\":\"none\"} -->\n<figure class=\"wp-block-image size-full is-resized\"><img src=\"http:\/\/biblioconf.lpgp.universite-paris-saclay.fr\/wordpress\/wp-content\/uploads\/2024\/09\/Logotype-UPSaclay_BLANC.png\" alt=\"\" class=\"wp-image-535\" style=\"width:223px;height:auto\"\/><\/figure>\n<!-- \/wp:image --><\/div>\n<!-- \/wp:group --><\/div>\n<!-- \/wp:column --><\/div>\n<!-- \/wp:columns --><\/div>\n<!-- \/wp:group --><\/main>\n<!-- \/wp:group -->","_en_post_name":"","_en_post_excerpt":"","_en_post_title":"Ex.2 PLASMA-BLASED COATINGS PROCESSES FOR NANOCOMPOSITE MATERIALS","_fr_post_content":"<!-- wp:heading {\"textAlign\":\"center\",\"level\":1,\"style\":{\"typography\":{\"fontStyle\":\"normal\",\"fontWeight\":\"300\"}}} -->\n<h1 class=\"wp-block-heading has-text-align-center\" style=\"font-style:normal;font-weight:300\">Ex.2 PLASMA-BLASED COATINGS PROCESSES FOR NANOCOMPOSITE MATERIALS<\/h1>\n<!-- \/wp:heading -->\n\n<!-- wp:separator {\"backgroundColor\":\"lightgrey\"} -->\n<hr class=\"wp-block-separator has-text-color has-lightgrey-color has-alpha-channel-opacity has-lightgrey-background-color has-background\"\/>\n<!-- \/wp:separator -->\n\n<!-- wp:paragraph {\"style\":{\"elements\":{\"link\":{\"color\":{\"text\":\"var:preset|color|secondary\"}}},\"typography\":{\"fontStyle\":\"normal\",\"fontWeight\":\"600\"}},\"textColor\":\"secondary\"} -->\n<p class=\"has-secondary-color has-text-color has-link-color\" style=\"font-style:normal;font-weight:600\">CONTACT : JEAN-PASCAL BORRA&nbsp;<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p>In-flight coating of NP by post-DBD reactive PE-CVD of gas precursor for thermo-stable SiO2 coating of photocatalytic NP (2015-19, 1 PhD in collaboration with Prof.Weber from TU Clausthal, [<a href=\"https:\/\/www.lpgp.universite-paris-saclay.fr\/fr\/equipes-de-recherche\/dea#12\">12<\/a>, <a href=\"https:\/\/www.lpgp.universite-paris-saclay.fr\/fr\/equipes-de-recherche\/dea#T34\">T34<\/a>])<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p>Coatings of agglomerated NP is used to improve thermostability to limit the surface reduction by melting of catalytic agglomerates. Silicon oxide is one of the preferred nontoxic and almost inert coating materials. Liquid coating methods imply washing, drying and separation steps, with residual impurities from solvents contaminating the final solid coatings. Therefore, gas-phase coating methods are generally preferred (e.g. atomic layer deposition and plasma enhanced chemical vapor deposition PE-CVD). Here, a plasma-based aerosol process has been proposed and validated for in-flight coating of particles by post-Plasma SiOx coating.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p>It has been shown that non-thermal plasma filaments induced in a dielectric barrier discharge (DBD) at atmospheric pressure trigger post-DBD gas phase reactions with tetraethyl orthosilicate (TEOS) precursor downstream of the DBD.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:image {\"id\":807,\"sizeSlug\":\"full\",\"linkDestination\":\"none\",\"align\":\"center\"} -->\n<figure class=\"wp-block-image aligncenter size-full\"><img src=\"https:\/\/biblioconf.lpgp.universite-paris-saclay.fr\/wordpress\/wp-content\/uploads\/2024\/09\/dea-ph3-re-reactive-post-dbd-cvd.png\" alt=\"\" class=\"wp-image-807\"\/><figcaption class=\"wp-element-caption\">Fig: (left) Set-up for post-DBD in-flight SiOx coating of NP :<br>1) Pt- catalytic NP production by spark-surface interaction, followed by 2-3) post-DBD Reactive Nucleation also called PE-CVD ; (right) size distributions of Pt- NP from sparks only, compared with the same coated aerosol with DBD on for 2 TEOS concentrations<\/figcaption><\/figure>\n<!-- \/wp:image -->\n\n<!-- wp:paragraph -->\n<p>Such post-DBD injection of gaseous organo-silicon precursor avoids electrode coating and discharge evolution to achieve a steady fluxes of active species downstream the so-stabilized DBD, with subsequent controlled thickness of SiOx coatings, versus TEOS concentration and reaction duration.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:image {\"id\":808,\"sizeSlug\":\"full\",\"linkDestination\":\"none\",\"align\":\"center\"} -->\n<figure class=\"wp-block-image aligncenter size-full\"><img src=\"https:\/\/biblioconf.lpgp.universite-paris-saclay.fr\/wordpress\/wp-content\/uploads\/2024\/09\/dea-ph4-re-post-dbd-pe-cvd-of-nm-siox-coating-from-teos.png\" alt=\"\" class=\"wp-image-808\"\/><\/figure>\n<!-- \/wp:image -->\n\n<!-- wp:paragraph -->\n<p>Homogeneous solid SiOx coatings of spherical and agglomerated metal and metal oxide nanoparticles (Pt, CuO, TiO2) have been achieved with controlled thickness from nanometer to micrometer.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p>The reader can find details on (i) operating conditions to be tuned to cover preferentially the interparticle contact zones between primary particles of agglomerates, (ii) improved thermal stability, related to higher sintering temperatures of so-coated agglomerates of catalytic Pt-NP, as well as (iii) tunable photoactivity catalytic Pt-NP agglomerates.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:spacer -->\n<div style=\"height:100px\" aria-hidden=\"true\" class=\"wp-block-spacer\"><\/div>\n<!-- \/wp:spacer -->\n\n<!-- wp:group {\"tagName\":\"main\",\"metadata\":{\"categories\":[\"featured\"],\"patternName\":\"inspiro\/section-with-text\",\"name\":\"Section with text\"},\"align\":\"full\",\"className\":\"site-content\",\"style\":{\"spacing\":{\"margin\":{\"top\":\"0\"},\"padding\":{\"top\":\"var:preset|spacing|x-large\",\"bottom\":\"var:preset|spacing|x-large\"}}},\"backgroundColor\":\"primary\",\"layout\":{\"inherit\":true,\"type\":\"constrained\"}} -->\n<main class=\"wp-block-group alignfull site-content has-primary-background-color has-background\" style=\"margin-top:0;padding-top:var(--wp--preset--spacing--x-large);padding-bottom:var(--wp--preset--spacing--x-large)\"><!-- wp:group {\"className\":\"is-style-default\",\"layout\":{\"type\":\"default\"}} -->\n<div class=\"wp-block-group is-style-default\"><!-- wp:spacer {\"height\":\"32px\"} -->\n<div style=\"height:32px\" aria-hidden=\"true\" class=\"wp-block-spacer\"><\/div>\n<!-- \/wp:spacer -->\n\n<!-- wp:columns -->\n<div class=\"wp-block-columns\"><!-- wp:column {\"style\":{\"spacing\":{\"padding\":{\"top\":\"0px\",\"right\":\"0px\",\"bottom\":\"0px\",\"left\":\"0px\"}},\"border\":{\"width\":\"0px\",\"style\":\"none\"},\"elements\":{\"link\":{\"color\":{\"text\":\"var:preset|color|white\"}}}},\"textColor\":\"white\"} -->\n<div class=\"wp-block-column has-white-color has-text-color has-link-color\" style=\"border-style:none;border-width:0px;padding-top:0px;padding-right:0px;padding-bottom:0px;padding-left:0px\"><!-- wp:heading {\"level\":3,\"textColor\":\"white\"} -->\n<h3 class=\"wp-block-heading has-white-color has-text-color\">Laboratoire de Physique des Gaz et des Plasmas<\/h3>\n<!-- \/wp:heading -->\n\n<!-- wp:paragraph {\"textColor\":\"lightgrey\"} -->\n<p class=\"has-lightgrey-color has-text-color\">Bat 210, rue Henri Becquerel<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"style\":{\"elements\":{\"link\":{\"color\":{\"text\":\"var:preset|color|lightgrey\"}}}},\"textColor\":\"lightgrey\"} -->\n<p class=\"has-lightgrey-color 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