{"id":20109,"date":"2026-09-15T12:30:06","date_gmt":"2026-09-15T16:30:06","guid":{"rendered":"https:\/\/www.autonocion.com\/us\/?p=20109"},"modified":"2026-09-15T08:37:35","modified_gmt":"2026-09-15T12:37:35","slug":"fusion-reactor-neon-blast-tungsten-sponge-world-first","status":"publish","type":"post","link":"https:\/\/www.autonocion.com\/us\/fusion-reactor-neon-blast-tungsten-sponge-world-first\/","title":{"rendered":"US scientists blast a tungsten &#8216;sponge&#8217; with neon inside a fusion reactor after every factory cleaning failed, and it comes out 87% pure metal"},"content":{"rendered":"<p>Tungsten has a pretty good list of talents for a metal. It&#8217;s got the highest melting point of any of them, it&#8217;s dense, and it holds together in heat that would turn most of what&#8217;s in your garage into a puddle. It&#8217;s the same metal that fills the roughly 7,000 bricks inside <a href=\"https:\/\/www.autonocion.com\/us\/sweden-tungsten-wheel-spinning-no-proton\/\">the five-ton wheel spinning in a vault under Sweden<\/a>, so it&#8217;s no surprise people building fusion machines keep reaching for it.<\/p>\n<p>But tungsten has an annoying habit. It gets dirty while it&#8217;s being made, and if you clean it at the factory, it gets dirty again on the way into the machine. A team from Princeton Plasma Physics Laboratory (PPPL), Princeton University and Penn State has a paper out on how to get around that, and their answer was to do the cleaning after the tungsten&#8217;s already sealed inside.<\/p>\n<p>They ran the test in <a href=\"https:\/\/www.pppl.gov\/research\/projects\/lithium-tokamak-experiment\" target=\"_blank\" rel=\"noopener nofollow\">LTX-\u03b2<\/a>, short for Lithium Tokamak Experiment-Beta, a small fusion device in New Jersey that PPPL bills as the first plasma experiment anywhere whose plasma-facing parts are entirely liquid metal. Those are the surfaces closest to the plasma, so they take the brunt of the heat, and LTX-\u03b2 exists to find out what happens when they&#8217;re liquid lithium instead of bare metal.<\/p>\n<h2>So why would a fusion wall need a sponge?<\/h2>\n<p>The plasma inside a tokamak (the doughnut-shaped kind of fusion machine) is rough on anything solid you put near it. Over time, solid metal walls can crack, melt at the surface and shed dust.<\/p>\n<p>Liquid metal gets around a lot of that because there&#8217;s nothing permanent to wreck. You keep flowing fresh metal in, and according to the paper, it&#8217;s practically immune to the lasting damage that neutrons and plasma do to solid parts. Lithium&#8217;s the favorite for the job.<\/p>\n<p>The catch is that a liquid has to be held in place somehow. One of the more promising ways to do it is a tile of porous tungsten that soaks up lithium the way a sponge holds water. PPPL uses that exact comparison, and frankly it&#8217;s a good one.<\/p>\n<p>Penn State made the sponges for this test with a process called spark plasma sintering. Basically, you pack tungsten powder into a graphite mold, squeeze it, and run a big electric current through it until the grains fuse where they touch. Stop early and you get a solid full of tiny open channels instead of a solid block.<\/p>\n<p>The problem is what comes along for the ride. Powder has a huge amount of surface area, and all of it picks up carbon and oxygen. When the researchers checked the sample that ended up in LTX-\u03b2, carbon made up 82% of the atoms up there, and none of the tungsten was in its plain metallic form.<\/p>\n<p>Then liquid lithium shows up. Lithium melts at about 358\u00b0F, but when it reacts with that carbon and oxygen it forms solids like lithium carbonate, which doesn&#8217;t melt until roughly 1,333\u00b0F. Those solids can build up inside the pores, and once that happens the lithium won&#8217;t flow the way it&#8217;s supposed to, which kind of defeats the purpose of having a sponge.<\/p>\n<h2>Cleaning tiles at the factory doesn&#8217;t work<\/h2>\n<p>So why not just scrub the tiles before they go in?<\/p>\n<p>According to PPPL, even a spotless tile picks up fresh contamination as soon as air gets to it while it&#8217;s being installed. So cleaning at the factory basically buys you a clean tile for the trip to the lab.<\/p>\n<p>The team went with glow discharge cleaning instead, which fusion labs have used for decades. You bleed a little gas into the vacuum chamber and put a few hundred volts on an electrode, and the gas lights up as a faint, low-temperature plasma. Charged gas atoms slam into the surfaces in there and knock loose whatever&#8217;s stuck to them, a bit like sandblasting at the scale of atoms.<\/p>\n<p>They didn&#8217;t use helium, the gas you&#8217;d find in a party balloon. They went with neon, because PPPL says neon ions weigh more and do a better job of blasting carbon and oxygen loose, and the paper says helium just isn&#8217;t efficient enough at that in a machine without carbon walls.<\/p>\n<h2>The sample got two rounds of neon<\/h2>\n<p>Only one sample went into LTX-\u03b2. Penn State made four, but two had their pores partly clogged when the leftover graphite was polished off, and a third formed tungsten carbide, which lithium has a much harder time wetting. So the fourth one got the job.<\/p>\n<p>It sat on a probe poking into the outer side of the machine&#8217;s vacuum vessel and went through two rounds of neon plasma. The first ran for 85 minutes. The second lasted five hours with the machine&#8217;s walls heated, which warmed the sample to about 392\u00b0F.<\/p>\n<p>After each round, the probe heated the sample quickly with an electron beam to measure the gas coming off it. Here&#8217;s where it gets a little messy. PPPL&#8217;s own write-up says the sample was heated to roughly 800\u00b0C, which is about 1,470\u00b0F. The paper says the heating topped out at 1,000 kelvin, or about 1,340\u00b0F, and that the setup couldn&#8217;t go any hotter than that. I&#8217;m going with the paper.<\/p>\n<p>Then the sample had to reach the analysis equipment without seeing air. It came off the probe inside a glovebox full of argon and rode to Princeton&#8217;s Imaging and Analysis Center in what the paper calls a vacuum suitcase, which is a much cooler piece of luggage than anything I own.<\/p>\n<h2>How clean is 87 percent clean?<\/h2>\n<p>The figure PPPL put up front is 87%, the share of metallic tungsten at the sample&#8217;s surface after cleaning, up from zero. That number only describes the tungsten atoms up there: before the cleaning none of them were in plain metallic form, and afterward 87% were.<\/p>\n<p>Carbon still accounted for 40% of all the atoms on that outer layer, down from 82%. So if you see this described as a surface that&#8217;s 87% clean, that&#8217;s a slightly generous way to put it. Oxygen at the very top barely moved, going from 17% to 20%.<\/p>\n<p>Just below the surface, the results look a lot better.<\/p>\n<div style=\"display: flex; flex-wrap: wrap; gap: 14px; margin: 24px 0;\">\n<div style=\"flex: 1 1 260px; min-width: 260px; background: #0f172a; color: #f1f5f9; border-radius: 14px; padding: 22px; border: 1px solid #1e293b;\">\n<div style=\"font-size: 11px; letter-spacing: 1.8px; text-transform: uppercase; color: #f87171; margin-bottom: 14px; font-weight: 600;\">Metallic tungsten, surface<\/div>\n<div style=\"font-size: 30px; font-weight: 800; line-height: 1; margin-bottom: 6px;\">0% \u2192 87%<\/div>\n<div style=\"font-size: 12px; color: #94a3b8; line-height: 1.4;\">Share of the tungsten at the surface in plain metallic form, before and after neon plasma and heating.<\/div>\n<\/div>\n<div style=\"flex: 1 1 260px; min-width: 260px; background: #0f172a; color: #f1f5f9; border-radius: 14px; padding: 22px; border: 1px solid #1e293b;\">\n<div style=\"font-size: 11px; letter-spacing: 1.8px; text-transform: uppercase; color: #f87171; margin-bottom: 14px; font-weight: 600;\">Metallic tungsten, below surface<\/div>\n<div style=\"font-size: 30px; font-weight: 800; line-height: 1; margin-bottom: 6px;\">32% \u2192 95%<\/div>\n<div style=\"font-size: 12px; color: #94a3b8; line-height: 1.4;\">Same measurement taken after etching away the top layer.<\/div>\n<\/div>\n<div style=\"flex: 1 1 260px; min-width: 260px; background: #0f172a; color: #f1f5f9; border-radius: 14px; padding: 22px; border: 1px solid #1e293b;\">\n<div style=\"font-size: 11px; letter-spacing: 1.8px; text-transform: uppercase; color: #f87171; margin-bottom: 14px; font-weight: 600;\">Carbon, surface<\/div>\n<div style=\"font-size: 30px; font-weight: 800; line-height: 1; margin-bottom: 6px;\">82% \u2192 40%<\/div>\n<div style=\"font-size: 12px; color: #94a3b8; line-height: 1.4;\">Share of all atoms on the outer layer.<\/div>\n<\/div>\n<div style=\"flex: 1 1 260px; min-width: 260px; background: #0f172a; color: #f1f5f9; border-radius: 14px; padding: 22px; border: 1px solid #1e293b;\">\n<div style=\"font-size: 11px; letter-spacing: 1.8px; text-transform: uppercase; color: #f87171; margin-bottom: 14px; font-weight: 600;\">Carbon, below surface<\/div>\n<div style=\"font-size: 30px; font-weight: 800; line-height: 1; margin-bottom: 6px;\">45% \u2192 3%<\/div>\n<div style=\"font-size: 12px; color: #94a3b8; line-height: 1.4;\">Share of all atoms after etching away the top layer.<\/div>\n<\/div>\n<\/div>\n<p>You could see the change, too. Camila L\u00f3pez P\u00e9rez, the Penn State researcher who led the work, said in PPPL&#8217;s write-up that the sample went from dull dark gray to silvery. Her first thought was that they&#8217;d been depositing material on it, which she said &#8220;would have been a terrible result.&#8221; That&#8217;s not what happened. The sample had just gotten very clean.<\/p>\n<h2>This is still a one-sample test<\/h2>\n<p>I think this is a pretty clever bit of problem-solving. Cleaning the tile somewhere air can&#8217;t get back to it is arguably obvious once somebody says it out loud. Still, PPPL says no one had documented using glow discharge to clean powder-made parts like these inside a fusion machine and then studying them without any air exposure.<\/p>\n<p>The authors are upfront about a few limits, too. The paper says the clean result showed up after both the plasma and the heating, and they think both did part of the work. You can&#8217;t tell from these results how much credit goes to each. The sample also picked up a little iron from the machine&#8217;s stainless steel walls, plus some lithium left over from earlier experiments.<\/p>\n<p>The bigger issue is strength. The grains in these sintered sponges didn&#8217;t bond to each other very well, which left the samples brittle, and the paper says that would need to improve before one could survive the stresses inside a fusion reactor.<\/p>\n<p>We&#8217;re also a long way from a full wall of the stuff. LTX-\u03b2 is a small machine, and PPPL says its results may lead to more liquid lithium inside NSTX-U, the lab&#8217;s much bigger experiment, which recently <a href=\"https:\/\/www.autonocion.com\/us\/magnet-spain-reactor-fusion-machine\/\">got a 23,000-pound magnet flown in from Spain<\/a>. The authors expect the same cleaning approach to carry over to other powder-based parts, including 3D-printed ones, and that&#8217;s probably the most useful line in the whole <a href=\"https:\/\/www.sciencedirect.com\/science\/article\/pii\/S2352179126000669\" target=\"_blank\" rel=\"noopener nofollow\">paper in Nuclear Materials and Energy<\/a>.<\/p>\n<p>L\u00f3pez P\u00e9rez also led the upgrade of the probe the sample rode in on. According to <a href=\"https:\/\/www.pppl.gov\/news\/2026\/new-approach-cleaning-inner-walls-fusion-system-removes-another-obstacle-near-endless\" target=\"_blank\" rel=\"noopener nofollow\">PPPL&#8217;s August 4 announcement<\/a>, she&#8217;ll rejoin the lab this fall with the title of associate research physicist.<\/p>\n","protected":false},"excerpt":{"rendered":"<p>Tungsten has a pretty good list of talents for a metal. It&#8217;s got the highest melting point of any of &#8230; <\/p>\n<p class=\"read-more-container\"><a title=\"US scientists blast a tungsten &#8216;sponge&#8217; with neon inside a fusion reactor after every factory cleaning failed, and it comes out 87% pure metal\" class=\"read-more button\" href=\"https:\/\/www.autonocion.com\/us\/fusion-reactor-neon-blast-tungsten-sponge-world-first\/#more-20109\" aria-label=\"Read more about US scientists blast a tungsten &#8216;sponge&#8217; with neon inside a fusion reactor after every factory cleaning failed, and it comes out 87% pure metal\">Read more<\/a><\/p>\n","protected":false},"author":8,"featured_media":20114,"comment_status":"closed","ping_status":"closed","sticky":false,"template":"","format":"standard","meta":{"_acf_changed":false,"footnotes":""},"categories":[116],"tags":[],"class_list":["post-20109","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-energy","resize-featured-image"],"acf":[],"_links":{"self":[{"href":"https:\/\/www.autonocion.com\/us\/wp-json\/wp\/v2\/posts\/20109","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/www.autonocion.com\/us\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/www.autonocion.com\/us\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/www.autonocion.com\/us\/wp-json\/wp\/v2\/users\/8"}],"replies":[{"embeddable":true,"href":"https:\/\/www.autonocion.com\/us\/wp-json\/wp\/v2\/comments?post=20109"}],"version-history":[{"count":2,"href":"https:\/\/www.autonocion.com\/us\/wp-json\/wp\/v2\/posts\/20109\/revisions"}],"predecessor-version":[{"id":20115,"href":"https:\/\/www.autonocion.com\/us\/wp-json\/wp\/v2\/posts\/20109\/revisions\/20115"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/www.autonocion.com\/us\/wp-json\/wp\/v2\/media\/20114"}],"wp:attachment":[{"href":"https:\/\/www.autonocion.com\/us\/wp-json\/wp\/v2\/media?parent=20109"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/www.autonocion.com\/us\/wp-json\/wp\/v2\/categories?post=20109"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/www.autonocion.com\/us\/wp-json\/wp\/v2\/tags?post=20109"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}