{"id":48495,"date":"2025-02-12T10:19:43","date_gmt":"2025-02-12T15:19:43","guid":{"rendered":"https:\/\/engineering.jhu.edu\/materials\/?post_type=news&#038;p=48495"},"modified":"2025-08-07T15:47:28","modified_gmt":"2025-08-07T19:47:28","slug":"chemical-warfares-hidden-reactions-exposed","status":"publish","type":"news","link":"https:\/\/engineering.jhu.edu\/materials\/news\/chemical-warfares-hidden-reactions-exposed\/","title":{"rendered":"Chemical Warfare\u2019s Hidden Reactions Exposed"},"content":{"rendered":"<p><span data-contrast=\"auto\">Hopkins researchers have developed a new method to study how chemical warfare simulants\u2014stand-in chemicals that behave like real weapons without being toxic\u2014break down, offering insights into how better to neutralize real chemical warfare agents (CWAs). <\/span><span data-ccp-props=\"{}\">\u00a0<\/span><\/p>\n<p><span data-contrast=\"auto\">Their Polygonal Rotating Mirror Infrared Spectrometer, or PRiMIRS, imaging system can detect changes in the CWA simulant diisopropyl methyl phosphonate (DIMP) within milliseconds of its exposure to combusting metal powders that produce heat, a potential method of neutralizing chemical weapons. <\/span><span data-ccp-props=\"{}\">\u00a0<\/span><\/p>\n<p><span data-contrast=\"auto\">Their findings appear in the <\/span><a href=\"https:\/\/pubs-aip-org.proxy1.library.jhu.edu\/aip\/rsi\/article\/95\/12\/125102\/3323720\/Development-of-a-dual-spectroscopic-system-to\"><span><i>Review of Scientific Instruments<\/i><\/span><\/a><i><span data-contrast=\"auto\">.<\/span><\/i><span data-ccp-props=\"{}\">\u00a0<\/span><\/p>\n<p><span data-contrast=\"auto\">\u201cNeutralizing DIMP with metallic powders happens in less than a second, so we needed to develop a system that could measure very quickly,\u201d said Preetom \u201cRuku\u201d Borah, a graduate student in the <\/span><a href=\"https:\/\/engineering.jhu.edu\/materials\/\"><span>Whiting School of Engineering\u2019s Department of Materials Science and Engineering<\/span><\/a><span>, who studies the decomposition DIMP after rapid ignition with metal <\/span><span data-contrast=\"auto\">powders. \u201cThe spectrometer we developed uses infrared light to capture information more than a thousand times per second.\u201d<\/span><span data-ccp-props=\"{}\">\u00a0<\/span><\/p>\n<p><span data-contrast=\"auto\">Under the guidance of advisor <\/span><a href=\"https:\/\/engineering.jhu.edu\/materials\/faculty\/timothy-weihs\/\"><span data-contrast=\"none\">Tim Weihs<\/span><\/a><span data-contrast=\"auto\">, professor of materials science and engineering and director of the <\/span><a href=\"https:\/\/hemi.jhu.edu\/mseeura\/\"><span>Materials Science in Extreme Environments University Research Alliance,<\/span><\/a><span data-contrast=\"auto\"> Borah and colleagues designed the new system to identify the smallest details of DIMP\u2019s combustion, so they could accurately determine the rate and effectiveness of its neutralization. \u00a0<\/span><span data-ccp-props=\"{}\">\u00a0<\/span><\/p>\n<p><span data-contrast=\"auto\">\u201cWith PRiMIRS, we can see molecular signatures change quickly over time as we collect hundreds of measurements every second. We can chart how fast DIMP decomposes with the combustion of aluminum, magnesium, and zirconium composite powders,\u201d says Borah.<\/span><span data-ccp-props=\"{}\">\u00a0<\/span><\/p>\n<p><span data-contrast=\"auto\">The PRiMIRS imaging system uses infrared light to track chemical reactions, shining through a chamber of DIMP vapor interacting with metal powders and reflecting off a series of mirrors to capture rapid changes. A polygonal rotating mirror (which moves at 33,000 rotations per minute), parabolic mirrors, and a grated mirror separate the light into colors that show DIMP decomposition over time. After reflecting off these mirrors, infrared light enters a rotating slit which separates the colors before entering a detection chamber, which correlates each color with exact levels of DIMP in the chamber.<\/span><span data-ccp-props=\"{}\">\u00a0<\/span><\/p>\n<p><span data-contrast=\"auto\">\u201cThe polygonal rotating mirror is unique because a typical spectrometer doesn&#8217;t change the angle of light onto a stationary grating,\u201d says Borah. \u201cWith this feature, we can see wavelengths of light separated into different colors. When combined with the detector, the light variation indicates decomposition down to milliseconds.\u201d<\/span><span data-ccp-props=\"{&quot;134233117&quot;:false,&quot;134233118&quot;:false,&quot;201341983&quot;:0,&quot;335551550&quot;:1,&quot;335551620&quot;:1,&quot;335559685&quot;:0,&quot;335559737&quot;:0,&quot;335559738&quot;:0,&quot;335559739&quot;:160,&quot;335559740&quot;:279}\">\u00a0<\/span><\/p>\n<p><span data-contrast=\"auto\">The fully customizable and compact apparatus allows researchers to adjust for different applications, like testing for other CWA simulants.<\/span><span data-ccp-props=\"{}\">\u00a0<\/span><\/p>\n<p><span data-contrast=\"auto\">\u201cSince we have access to change every component of this system, the next best step would be to apply this to different agents. For instance, different simulants may have different molecule structures so we can adjust certain parts to better measure those molecules and still get those rapid results,\u201d Borah says. He posits that the system can also be used for other molecules that require quick measurements but aren\u2019t CWA simulants.<\/span><span data-ccp-props=\"{}\">\u00a0<\/span><\/p>\n<p><span data-contrast=\"auto\">Project collaborators in the Department of Electrical and Computer Engineering included Associate Professor <\/span><span>Mark Foster<\/span><span data-contrast=\"auto\">, a fellow at the <\/span><a href=\"https:\/\/hemi.jhu.edu\/\"><span>Hopkins Extreme Materials Institute<\/span><\/a><span data-contrast=\"auto\"> (HEMI), and postdoctoral fellow Milad Alemohammad. Nick Glumac, a Shao Lee Soo Professor at the University of Illinois Urbana-Champaign along with postdoctoral fellow Austin Butler and graduate student Damon Chen also collaborated on the project.<\/span><span data-ccp-props=\"{&quot;134233117&quot;:false,&quot;134233118&quot;:false,&quot;201341983&quot;:0,&quot;335551550&quot;:1,&quot;335551620&quot;:1,&quot;335559685&quot;:0,&quot;335559737&quot;:0,&quot;335559738&quot;:0,&quot;335559739&quot;:160,&quot;335559740&quot;:279}\">\u00a0<\/span><\/p>\n","protected":false},"template":"","class_list":["post-48495","news","type-news","status-publish","hentry","news_categories-research"],"acf":[],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v28.1 - https:\/\/yoast.com\/product\/yoast-seo-wordpress\/ -->\n<title>Chemical Warfare\u2019s Hidden Reactions Exposed - Department of Materials Science &amp; Engineering<\/title>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, max-video-preview:-1\" \/>\n<link rel=\"canonical\" href=\"https:\/\/engineering.jhu.edu\/materials\/news\/chemical-warfares-hidden-reactions-exposed\/\" \/>\n<meta property=\"og:locale\" content=\"en_US\" \/>\n<meta property=\"og:type\" content=\"article\" \/>\n<meta property=\"og:title\" content=\"Chemical Warfare\u2019s Hidden Reactions Exposed - Department of Materials Science &amp; 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