{"id":708,"date":"2026-06-23T15:23:36","date_gmt":"2026-06-23T06:23:36","guid":{"rendered":"https:\/\/www.ulvac-phi.com\/surface-analysis\/applications\/materials-research\/"},"modified":"2026-07-14T17:46:23","modified_gmt":"2026-07-14T08:46:23","slug":"materials-research","status":"publish","type":"page","link":"https:\/\/www.ulvac-phi.com\/en\/surface-analysis\/applications\/materials-research\/","title":{"rendered":"Materials Research"},"content":{"rendered":"\n<article class=\"p-materialsResearch\">\n    <div class=\"p-materialsResearch__inner\">\n\n        <p class=\"p-materialsResearch__lead\">Many basic materials are engineered to provide enhanced physical properties. Metal alloys, glasses, ceramics, and polymers often contain micro-phases and internal boundaries. The composition and distribution of these micro-phases have significant impact on the performance of the end product.<\/p>\n\n        <div class=\"p-materialsResearch__body\">\n\n            <h2 class=\"p-materialsResearch__title\">Grain boundary segregation (AES)<\/h2>\n            <p>In situ fracture analysis can be used to probe grain boundary surfaces and detect elements that have segregated to the grain boundary or formed small precipitates. In the example shown below, a segment of a steam turbine blade was fractured under UHV conditions and the grain boundary surfaces were characterized with PHI&#8217;s Auger Nanoprobe surface analysis equipment.<\/p>\n\n            <div class=\"p-materialsResearch__figRow\">\n                <figure class=\"p-materialsResearch__figure\">\n                    <img src=\"\/wp-content\/themes\/ulvac-phi\/assets\/img\/page\/materials-research\/pg_materials_fracture-low.jpg\" alt=\"Materials Research Surface Analysis (Low-magnification SEM image of sample fracture surface)\" width=\"410\" height=\"334\" loading=\"lazy\" decoding=\"async\"\/>\n                    <figcaption class=\"p-materialsResearch__cap\"><span class=\"p-materialsResearch__capNum\">Fig. 1:<\/span> Low magnification secondary electron image of a steel fracture surface.<\/figcaption>\n                <\/figure>\n                <figure class=\"p-materialsResearch__figure\">\n                    <img src=\"\/wp-content\/themes\/ulvac-phi\/assets\/img\/page\/materials-research\/pg_materials_fracture-high.jpg\" alt=\"Materials Surface Analysis (High-magnification SEM image of sample fracture surface)\" width=\"410\" height=\"334\" loading=\"lazy\" decoding=\"async\"\/>\n                    <figcaption class=\"p-materialsResearch__cap\"><span class=\"p-materialsResearch__capNum\">Fig. 2:<\/span> High magnification secondary electron image of a steel fracture surface<\/figcaption>\n                <\/figure>\n            <\/div>\n\n            <figure class=\"p-materialsResearch__figure\">\n                <img src=\"\/wp-content\/themes\/ulvac-phi\/assets\/img\/page\/materials-research\/pg_materials_aes-elemental-map.jpg\" alt=\"Elemental AES Surface Analysis (Elemental map image by Auger analysis)\" width=\"256\" height=\"256\" loading=\"lazy\" decoding=\"async\"\/>\n                <figcaption class=\"p-materialsResearch__cap\"><span class=\"p-materialsResearch__capNum\">Fig. 3:<\/span> Elemental AES images showing the grain boundary surface to be decorated with an antimony segregant and chromium carbide precipitates. (Iron Matrix, Chromium carbide precipitates, Antimony segregant)<\/figcaption>\n            <\/figure>\n\n            <h2 class=\"p-materialsResearch__title\">Detection of micro phases in ceramic materials (TOF-SIMS, AES)<\/h2>\n            <p>Many ceramics are mixtures of materials that form localized compositional phases. The size and composition of these phases has a significant effect on the physical properties of the ceramic. TOF-SIMS provides the ability to image and characterize the individual phases as shown below.<\/p>\n\n            <figure class=\"p-materialsResearch__figure\">\n                <img src=\"\/wp-content\/themes\/ulvac-phi\/assets\/img\/page\/materials-research\/pg_materials_tof-sims-azs.jpg\" alt=\"TOF-SIMS Surface Analysis (TOF-SIMS elemental imaging of AZS ceramics)\" width=\"410\" height=\"410\" loading=\"lazy\" decoding=\"async\"\/>\n                <figcaption class=\"p-materialsResearch__cap\"><span class=\"p-materialsResearch__capNum\">Fig 4: <\/span>Elemental imaging of ceramic surfaces by TOF-SIMS. TOF-SIMS images of alumina-zirconia-silica (AZS) ceramics. Alumina and zirconia-rich phases were identified within the silica matrix, and their distribution was clearly observed. In addition, sodium and sulfur were shown to be concentrated in the silica matrix.<\/figcaption>\n            <\/figure>\n\n        <\/div>\n    <\/div>\n<\/article>\n\n","protected":false},"excerpt":{"rendered":"<p>Many basic materials are engineered to provide enhanced physical properties. Metal alloys, glasses, ceramics, and polymers often contain micro-phases and internal boundaries. The composition and distribution of these micro-phases have significant impact on the performance of the end product. Grain boundary segregation (AES) In situ fracture analysis can be used to probe grain boundary surfaces and detect elements that have segregated to the grain boundary or formed small precipitates. In the example shown below, a segment of a steam turbine blade was fractured under UHV conditions and the grain boundary surfaces were characterized with PHI&#8217;s Auger Nanoprobe surface analysis equipment. Fig. 1: Low magnification secondary electron image of a steel [&hellip;]<\/p>\n","protected":false},"author":1,"featured_media":0,"parent":696,"menu_order":41,"comment_status":"closed","ping_status":"closed","template":"","meta":{"_acf_changed":false,"footnotes":""},"class_list":["post-708","page","type-page","status-publish","hentry"],"acf":[],"aioseo_notices":[],"aioseo_head":"\n\t\t<!-- All in One SEO 4.9.9 - aioseo.com -->\n\t<meta name=\"description\" content=\"Many basic materials are engineered to provide enhanced physical properties. Metal alloys, glasses, ceramics, and polymers often contain micro-phases and internal boundaries. The composition and distribution of these micro-phases have significant impact on the performance of the end product. 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