24,657 materials
YRhW2 is a ternary intermetallic compound combining yttrium, rhodium, and tungsten—a high-density metallic system likely developed for high-temperature or catalytic applications. Materials in this composition family are of primary interest in research contexts for extreme-environment structural applications, catalysis, or specialized aerospace/defense systems where conventional superalloys reach performance limits.
YSc2Ni2 is an intermetallic compound combining yttrium, scandium, and nickel, representing a rare-earth transition metal system of primarily research interest. This material belongs to the family of ternary intermetallics being investigated for high-temperature applications and potential magnetic or electronic properties, though it remains largely in the exploratory phase without widespread commercial deployment. Engineers would consider this compound if working on advanced aerospace materials, high-temperature structural applications, or functional materials research where rare-earth strengthening and intermetallic stability are design drivers.
YScAg2 is a ternary intermetallic compound combining yttrium, scandium, and silver. This is a research-phase material studied for its potential in specialized applications where the combination of rare-earth (Y, Sc) and noble-metal (Ag) elements offers unique electrochemical or thermal properties not readily available in conventional alloys.
YScAu2 is an intermetallic compound composed of yttrium, scandium, and gold, belonging to the family of rare-earth and transition-metal intermetallics. This material is primarily of research and development interest rather than established industrial production, with potential applications in specialized high-performance contexts where the unique combination of rare-earth chemistry and gold's noble properties could offer advantages in corrosion resistance, electronic properties, or high-temperature stability. The choice of this material would be driven by specific functional requirements in emerging technologies rather than by cost or conventional mechanical performance benchmarks.
YSi2Ag2 is an intermetallic compound combining yttrium, silicon, and silver, representing a research-phase material from the rare-earth intermetallic family. This composition sits at the intersection of high-temperature materials science and advanced alloy development, where yttrium-based intermetallics are investigated for thermal stability and silicon-silver bonding provides potential for tailored mechanical and electrical properties. Industrial applications remain primarily experimental, though the material family shows promise in aerospace thermal management, electronics bonding systems, and high-performance composite matrices where conventional alloys face temperature or conductivity limitations.
YSi2Au2 is an intermetallic compound combining yttrium, silicon, and gold, belonging to the rare-earth metal silicide family. This is a research-phase material rather than a production commodity; such ternary intermetallics are investigated for high-temperature structural applications, electronic materials, and specialized coating systems where the combination of rare-earth bonding character and noble metal stability offers potential advantages over conventional binary silicides.
YSi2Cu2 is an intermetallic compound combining yttrium, silicon, and copper phases, belonging to the family of rare-earth transition metal silicides. While not widely commercialized as a standard engineering material, compounds in this material class are of research interest for applications requiring combinations of thermal stability, electronic properties, and potential high-temperature performance. The specific composition suggests potential use in advanced thermal management, electronic device applications, or as a reinforcement phase in composite systems where rare-earth silicide chemistry offers benefits over conventional alternatives.
YSi2Ni is an intermetallic compound combining yttrium, silicon, and nickel, belonging to the rare-earth transition metal silicide family. This material is primarily of research and development interest rather than established industrial production, with potential applications in high-temperature structural components and aerospace systems where its intermetallic bonding could provide strength retention at elevated temperatures. The yttrium addition and nickel-silicon base suggest exploration toward improved creep resistance and oxidation protection compared to conventional superalloys, though industrial adoption remains limited.
YSi2Ni2 is an intermetallic compound combining yttrium, silicon, and nickel, belonging to the rare-earth metal silicide family. This is primarily a research material studied for high-temperature applications and structural uses where the combination of rare-earth strengthening and intermetallic bonding offers potential advantages over conventional superalloys. Engineers would consider this material in development contexts where extreme thermal stability, oxidation resistance, or specialized mechanical properties at elevated temperatures are critical—though it remains largely in the experimental phase compared to mature commercial alternatives.
YSi₂Pt₂ is an intermetallic compound combining yttrium, silicon, and platinum—a research-phase material belonging to the family of refractory intermetallics. This ternary compound is primarily investigated for high-temperature structural applications where oxidation resistance, thermal stability, and mechanical strength at elevated temperatures are critical, leveraging platinum's nobility and yttrium's oxide-forming capability to improve surface protection. Engineers would consider YSi₂Pt₂ in aerospace and power-generation contexts where conventional superalloys reach performance limits, though it remains largely in development and is not yet a commodity material for routine engineering design.
YSi2W2 is a refractory intermetallic compound combining yttrium, silicon, and tungsten, belonging to the family of high-melting-point metal silicides and tungstides. This material is primarily of research and developmental interest rather than established in high-volume production, with potential applications where exceptional thermal stability, oxidation resistance, and structural integrity at elevated temperatures are required. Its use case potential aligns with advanced aerospace, defense, and thermal management applications where conventional superalloys reach their performance limits.
YSi₃Ni is an intermetallic compound combining yttrium, silicon, and nickel, belonging to the rare-earth metal silicide family. This material is primarily of research interest rather than established industrial production, with potential applications in high-temperature structural applications and advanced composite systems where the combination of rare-earth elements and transition metals offers novel property combinations. The yttrium-nickel-silicon system has been explored for its potential thermal stability and hardness characteristics, though widespread commercial deployment remains limited.
YSiAg is a ternary metallic compound combining yttrium, silicon, and silver elements, representing an intermetallic or advanced alloy system likely developed for specialized high-performance applications. This material family is primarily found in research and emerging technology contexts rather than mainstream industrial production, with potential applications leveraging the combined properties of its constituent elements—yttrium's high-temperature stability, silicon's strength and thermal properties, and silver's electrical and thermal conductivity. Engineers would consider YSiAg where conventional alloys cannot meet demanding requirements for thermal management, electrical performance at elevated temperatures, or where the specific property combination of this ternary system offers advantages over binary alternatives.
YSiAu is an experimental ternary intermetallic compound combining yttrium, silicon, and gold. This material belongs to the rare-earth intermetallic family and is primarily of research interest for its unusual mechanical properties and potential for high-temperature or specialty applications where the combination of these elements offers advantages over binary alloys. Its development reflects ongoing materials research into ordered intermetallic phases that may provide enhanced stiffness, thermal stability, or functional properties in niche engineering domains.
Y(SiAu)₂ is an intermetallic compound combining yttrium with silicon and gold, belonging to the rare-earth metal family of advanced materials. This is primarily a research-phase material studied for its potential in high-performance applications where the combination of yttrium's reactive properties and gold's stability offers unique thermomechanical characteristics. The material represents the broader class of rare-earth intermetallics being investigated for aerospace, electronics, and thermal management applications where conventional alloys reach performance limits.
YSiCu is a ternary metal alloy combining yttrium, silicon, and copper, representing an experimental composition in the rare-earth transition metal family. This material system is of research interest for applications requiring combinations of high stiffness, damping properties, and thermal or electrical characteristics that copper-based alloys can provide when alloyed with yttrium and silicon. Engineers would evaluate YSiCu for advanced aerospace, electronic packaging, or specialty structural applications where the rare-earth element addition modifies strength, creep resistance, or thermal stability beyond conventional copper-silicon alloys.
Y(SiCu)2 is an intermetallic compound combining yttrium with silicon and copper, belonging to the broader family of rare-earth-transition metal silicides. This material is primarily of research interest rather than established commercial production, studied for its potential in high-temperature structural applications and functional device contexts where the combination of rare-earth and transition metal elements offers tailored mechanical and thermal properties.
YSiNi is a ternary intermetallic compound combining yttrium, silicon, and nickel elements, representing a class of rare-earth transition metal silicides. This material is primarily of research interest for high-temperature structural applications and materials science studies, where the combination of rare-earth and transition metal constituents offers potential for enhanced mechanical performance and thermal stability compared to conventional binary silicides or nickel-based alloys.
YSiPt is a ternary intermetallic compound combining yttrium, silicon, and platinum, representing a specialized high-performance alloy designed for extreme-environment applications. This material belongs to the family of refractory intermetallics and is primarily of research and developmental interest, with potential applications in aerospace and high-temperature structural systems where oxidation resistance and thermal stability are critical.
Y(SiPt)₂ is an intermetallic compound combining yttrium with silicon and platinum, belonging to the family of rare-earth transition metal silicides. This is a research-phase material studied for its potential in high-temperature structural applications where superior strength and oxidation resistance are needed, particularly in aerospace and power generation sectors.
YSiPt2 is an intermetallic compound combining yttrium, silicon, and platinum, belonging to the family of high-density metallic intermetallics. This material is primarily of research interest rather than established production use, explored for applications requiring exceptional density, thermal stability, and corrosion resistance at elevated temperatures, though its high platinum content and complex synthesis limit current industrial adoption.
YSn₂Pt is an intermetallic compound combining yttrium, tin, and platinum in a defined stoichiometric ratio, belonging to the family of ternary metallic intermetallics. This material is primarily of research and exploratory interest rather than established industrial production, with potential applications in high-temperature materials development, catalysis, and advanced alloy design where the combination of rare-earth (yttrium), post-transition (tin), and noble-metal (platinum) elements may offer unique electrochemical or thermal properties.
YSnAu is a ternary intermetallic compound combining yttrium, tin, and gold—a rare combination not commonly found in commercial production. This material exists primarily within research and development contexts, where ternary rare-earth metal systems are explored for their unique electronic, magnetic, and structural properties that cannot be achieved with binary alloys or simpler compositions. Engineers and materials scientists investigate such systems to discover novel compounds with potential applications in high-performance electronics, superconductivity research, or specialized functional materials where rare-earth elements offer unique quantum or magnetic behavior.
YSnAu2 is an intermetallic compound composed of yttrium, tin, and gold, belonging to the class of rare-earth-based metallic systems. This material represents specialized research in high-density intermetallic alloys and is not a common commercial material; however, compounds in the yttrium-tin-gold family are of interest for their unique electronic and thermal properties in specialized metallurgical and materials science applications.
YSnPt is a ternary intermetallic compound combining yttrium, tin, and platinum. This is an experimental research material rather than an established commercial alloy; such rare-earth/noble-metal systems are typically investigated for specialized applications requiring combinations of chemical stability, thermal properties, or electronic behavior that cannot be achieved in conventional alloys.
YSnPt2 is an intermetallic compound combining yttrium, tin, and platinum, belonging to the family of rare-earth–transition metal intermetallics. This material is primarily of research interest rather than established industrial production, with potential applications in high-temperature structural applications and advanced functional materials where the combination of rare-earth and noble-metal constituents offers unique thermal stability and electronic properties.
YTi is an intermetallic compound combining yttrium and titanium, belonging to the rare-earth titanium alloy family. This material is primarily of research and development interest, explored for high-temperature structural applications where conventional titanium alloys reach their performance limits. Its potential lies in aerospace and energy sectors where lightweight, high-strength materials capable of sustained performance at elevated temperatures are critical, though industrial adoption remains limited compared to established superalloys and titanium alloys.
YTi2Ga4 is an intermetallic compound combining yttrium, titanium, and gallium, belonging to the family of rare-earth transition metal gallides. This material is primarily of research interest rather than established industrial production, with potential applications in high-temperature structural applications and electronic devices that exploit the unique electronic properties arising from its complex crystal structure.
YTi2Ge2 is an intermetallic compound combining yttrium, titanium, and germanium, belonging to the family of Heusler-type or related ternary intermetallics. This is a research material rather than a commercial alloy; compounds in this family are studied for potential applications in magnetism, thermoelectrics, and high-temperature structural applications where conventional metals reach performance limits.
YTi2S4 is a ternary metal sulfide compound combining yttrium and titanium with sulfur, belonging to the transition metal chalcogenide family. This material is primarily of research interest rather than established industrial use, with potential applications in solid-state chemistry and energy storage systems where layered sulfide structures offer ionic conductivity or electrochemical properties. The yttrium-titanium-sulfur system represents an emerging materials platform being investigated for next-generation battery components, thermoelectrics, and catalytic applications where the combination of rare earth and transition metal elements can provide unique electronic and structural characteristics.
YTi2Si2 is an intermetallic compound combining yttrium, titanium, and silicon, belonging to the family of refractory metal silicides and rare-earth titanium compounds. This material is primarily investigated in research contexts for high-temperature structural applications, where its combination of light weight and potential thermal stability make it a candidate for aerospace and advanced engineering environments where conventional titanium alloys reach their limits.
YTiBe is an experimental intermetallic compound combining yttrium, titanium, and beryllium, representing research into advanced lightweight metallic systems with potential for high-temperature applications. While not yet established in mainstream industrial production, this material family is investigated for aerospace and defense applications where the combination of low density with elevated stiffness could enable improved structural efficiency. The material remains primarily in the research and development phase, with engineering interest centered on understanding its thermomechanical properties and manufacturing feasibility as part of broader efforts to develop next-generation structural alloys.
YTiF5 is a yttrium-titanium fluoride intermetallic compound that belongs to the family of rare-earth metal fluorides. This material is primarily of research and specialized industrial interest, valued for its potential in optical, electronic, and high-temperature applications where fluoride compounds offer superior properties such as transparency to infrared radiation and chemical stability against corrosive environments. Engineers and researchers select YTiF5 for niche applications requiring the combined benefits of titanium's mechanical strength with yttrium's rare-earth properties and fluoride's exceptional chemical and thermal resistance, though practical use remains limited compared to more established titanium alloys and ceramics.
Y(TiGa₂)₂ is an intermetallic compound combining yttrium with titanium and gallium, belonging to the family of ternary metal compounds. This is a research-phase material studied for its potential in high-performance structural and functional applications where combined mechanical stiffness and thermal stability are valuable. The compound exhibits characteristics typical of intermetallic phases—notably high elastic moduli—making it of interest in aerospace and high-temperature materials research, though current applications remain largely experimental and confined to materials science investigations rather than established industrial use.
YTiGe is an intermetallic compound combining yttrium, titanium, and germanium, representing an emerging research material in the family of rare-earth transition metal germanides. While not yet established in mainstream industrial production, this material is of interest to researchers exploring novel intermetallics for high-temperature applications and advanced functional properties where conventional alloys reach their limits. The combination of a rare-earth element with transition metals and a metalloid suggests potential for tailored stiffness, thermal stability, or electronic properties depending on its crystal structure and phase composition.
YTiN3 is an experimental ternary nitride compound combining yttrium, titanium, and nitrogen, belonging to the family of refractory ceramic nitrides. This material is primarily of research interest for its potential as a hard, high-temperature coating or structural ceramic, leveraging the hardness and thermal stability typical of titanium nitride systems enhanced by yttrium alloying. Industrial adoption remains limited, but the material is investigated in the aerospace and cutting-tool sectors where extreme hardness and oxidation resistance at elevated temperatures are valued.
YTiSi is an intermetallic compound combining yttrium, titanium, and silicon, typically studied as a high-temperature structural material within the broader family of refractory intermetallics. This is primarily a research material rather than an established commercial alloy, developed to explore improved strength-to-weight ratios and oxidation resistance at elevated temperatures compared to conventional titanium alloys and nickel-based superalloys.
YTlAg2 is a ternary intermetallic compound composed of yttrium, thallium, and silver. This material belongs to the family of rare-earth-containing metallic compounds and appears to be primarily of research or specialized interest rather than a widely commercialized engineering material. The combination of a rare-earth element (yttrium) with noble metals (silver) and a post-transition metal (thallium) suggests potential applications in advanced electronic, photonic, or catalytic systems where unusual electronic or structural properties are desired.
YTmAg2 is an intermetallic compound combining yttrium, thulium, and silver, representing a rare-earth metal system studied for specialized high-performance applications. This material belongs to the family of rare-earth intermetallics, which are primarily investigated in research settings for their unique electronic, magnetic, or thermal properties rather than large-scale industrial production. Engineers would consider this material in advanced research contexts where rare-earth alloying offers advantages in extreme environments, magnetic devices, or thermoelectric applications that cannot be met by conventional alloys.
YTmAl₂ is an intermetallic compound composed of yttrium, thulium, and aluminum, belonging to the rare-earth metal aluminide family. This material is primarily of research and developmental interest for high-temperature applications where its intermetallic structure offers potential advantages in strength and oxidation resistance at elevated temperatures. While not yet widely deployed in mainstream engineering, materials in this class are being investigated for aerospace propulsion systems, thermal barrier coatings, and advanced structural applications where rare-earth stabilization can improve creep resistance and chemical stability.
YTmCu2 is an intermetallic compound containing yttrium, thulium, and copper elements, representing a rare-earth copper-based material system. This is primarily a research and development composition investigated for specialized applications requiring the unique electronic, magnetic, or thermal properties that rare-earth intermetallics provide. Materials in this family are of interest to advanced materials researchers exploring high-performance applications where conventional alloys fall short, though commercial adoption remains limited pending demonstration of manufacturability and cost-effectiveness at scale.
YUAl4 is an intermetallic compound composed of yttrium and aluminum, belonging to the rare-earth aluminum family of metallic materials. This material is primarily of research and specialized industrial interest, explored for applications requiring the combination of light weight with high-temperature stability and unique electronic or magnetic properties that intermetallics can provide. Its adoption remains limited compared to conventional aluminum alloys, but it represents the broader potential of rare-earth intermetallics in advanced aerospace, thermal management, and functional material applications where conventional alloys reach performance limits.
YUCu4Si4 is an intermetallic compound combining yttrium, copper, and silicon, belonging to the rare-earth metal family of advanced materials. This is a research-phase material studied primarily for its potential in high-performance applications where thermal stability and specific electronic or magnetic properties are valuable; it is not yet widely commercialized in mainstream engineering. The yttrium-copper-silicon system is of interest to materials scientists investigating novel intermetallic phases for applications demanding unusual combinations of strength, thermal conductivity, or magnetic behavior.
YV is a vanadium-based metal or alloy, likely a refractory or specialty steel component designed for high-temperature and high-strength applications. Vanadium additions are typically used to enhance hardness, wear resistance, and creep resistance in tool steels, superalloys, and structural alloys, making it suitable for demanding engineering environments where toughness and thermal stability are critical.
YV2Ge2 is an intermetallic compound composed of yttrium, vanadium, and germanium, belonging to the family of rare-earth transition metal germanides. This material is primarily of research interest for its potential in thermoelectric and electronic applications, where the combination of rare-earth and transition metal elements can produce favorable band structure characteristics. It represents an experimental composition within the broader class of Heusler-type and related intermetallic compounds being investigated for next-generation energy conversion and solid-state device technologies.
YV2S4 is a vanadium-sulfur intermetallic compound that belongs to the metal chalcogenide family, combining vanadium with sulfur in a defined stoichiometric ratio. This material is primarily of research and specialized industrial interest, used in applications requiring refractory properties, electrical conductivity modulation, or catalytic functions in high-temperature environments. Its notable characteristics within the metal chalcogenide class make it relevant for emerging technologies in energy storage, thermal management systems, and materials where transition-metal sulfides offer advantages over conventional alloys.
YV2Si2 is a ternary intermetallic compound combining yttrium, vanadium, and silicon, belonging to the metal silicide family. This material is primarily of research and development interest rather than established industrial production, with potential applications in high-temperature structural materials and advanced alloys where the combination of refractory elements offers enhanced thermal stability and oxidation resistance compared to conventional metal alloys.
YV6Sn6 is an intermetallic compound combining yttrium and tin in a 1:1 atomic ratio, belonging to the rare-earth tin intermetallic family. This material is primarily of research interest for applications requiring high-temperature stability and specific electronic or magnetic properties that tin-based intermetallics can provide. While not yet widely deployed in mainstream engineering, materials in this family are being explored for specialized applications where their unique phase stability and potential for tailored properties at elevated temperatures offer advantages over conventional alloys.
YVF is a yttrium-vanadium-iron metal alloy belonging to the rare-earth transition metal family, typically investigated for high-temperature and magnetic applications. This material is primarily of research and specialized industrial interest, used in applications requiring combined thermal stability and magnetic properties such as permanent magnets, magnetic recording media, and high-temperature structural components. Its composition combines the magnetic strength of vanadium and iron with the thermal stability benefits of yttrium, making it a candidate where conventional ferromagnetic alloys reach performance limits.
YVF5 is an yttrium-vanadium fluoride compound belonging to the metal fluoride family, likely developed for specialized functional or research applications where fluoride chemistry offers advantages in thermal stability or chemical resistance. While not a mainstream engineering material with established industry standards, compounds in this chemical family are investigated for applications requiring high-temperature stability, ionic conductivity, or resistance to corrosive fluorine-bearing environments. Engineers would consider YVF5 primarily in advanced research contexts or niche applications where conventional metallic alloys or ceramics are inadequate.
YVFe11 is an iron-based intermetallic compound containing yttrium and iron, belonging to the rare-earth iron family of materials. This material is primarily of research interest for high-temperature applications and permanent magnet systems, where the rare-earth iron backbone offers potential for enhanced magnetic properties and thermal stability compared to conventional iron alloys. Engineers consider YVFe11 in specialized applications requiring strong magnetic performance at elevated temperatures, though practical industrial use remains limited pending further development of processing routes and cost optimization.
YVN3 is a vanadium nitride ceramic compound belonging to the refractory metal nitride family, known for extreme hardness and high-temperature stability. It appears in cutting tool coatings, wear-resistant applications, and specialized high-performance surface treatments where conventional materials fail; vanadium nitrides are valued in machining and metal-forming operations for their ability to maintain hardness at elevated temperatures and resist adhesive wear. This material represents the refractory nitride class, competing with TiN and CrN coatings in applications demanding superior thermal and chemical resistance.
YW3 is a dense metallic alloy belonging to a family of high-density materials, likely engineered for applications requiring substantial mass or shielding properties. Without full compositional specification, it appears to be a specialty alloy positioned for demanding industrial or defense-related applications where density and structural integrity under extreme conditions are critical performance drivers.
YWC2 is a tungsten carbide-cobalt composite (WC-Co) metal matrix material, part of the cemented carbide family widely used in cutting, wear, and impact applications. It is employed in machining tools, rock drilling, mining equipment, and wear-resistant components where high hardness and toughness balance is required. This material system is preferred over monolithic ceramics in applications demanding both edge durability and resistance to mechanical shock.
YWF5 is a metal alloy with moderate density and elastic properties that position it for structural and mechanical applications where weight and stiffness balance is important. While the specific composition is not detailed in available records, its mechanical signature suggests use in aerospace, automotive, or industrial equipment applications where engineers need reliable performance in moderate-stress environments.
YWN3 is a metal alloy belonging to the tungsten-nickel-based family, designed for applications requiring high stiffness and density in a compact form factor. This material is used in precision engineering applications such as counterweights, radiation shielding, and high-density structural components where gravitational or inertial performance is critical. Engineers select YWN3 when space constraints demand superior density-to-volume ratios compared to conventional steels, or when radiation attenuation without excessive bulk is essential.
YZn2Ag2 is an intermetallic compound combining yttrium, zinc, and silver—a rare-earth metal system primarily of academic and research interest rather than established industrial production. This material belongs to the family of yttrium-based intermetallics, which are investigated for potential applications requiring specific combinations of thermal, electronic, or corrosion-resistant properties that conventional alloys cannot easily achieve. Limited commercial deployment exists; the material's engineering relevance depends on emerging applications in advanced electronics, specialized coatings, or high-performance composite systems where its unique phase chemistry offers advantages over more conventional alternatives.
YZn2Au is an intermetallic compound composed of yttrium, zinc, and gold, belonging to the family of rare-earth metal intermetallics. This is a research material rather than a widely commercialized alloy; it is primarily of interest in condensed-matter physics and materials science for studying electronic properties, crystal structure, and potential functional applications in specialized devices. The combination of rare-earth (yttrium) and noble metal (gold) elements suggests potential applications in high-performance electronics, magnetism, or superconductivity research, though practical engineering adoption remains limited.
YZn2Pt2 is an intermetallic compound combining yttrium, zinc, and platinum in a defined stoichiometric ratio, belonging to the class of ternary metal intermetallics. This material is primarily of research interest rather than established industrial production, investigated for potential applications in high-performance alloys, catalysis, and advanced functional materials where the combination of rare-earth (yttrium) and noble-metal (platinum) elements offers unique electronic and chemical properties.
YZnCuP2 is a quaternary intermetallic compound combining yttrium, zinc, copper, and phosphorus. This is a research-phase material within the broader family of rare-earth-transition metal phosphides, which are being investigated for potential applications requiring specific electronic, magnetic, or catalytic properties that differ substantially from conventional alloys.