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The business sector ‘Cryogenic Instruments’ includes nanopositioners, cryostats and microscopes for research in extreme environments. ‘Nanoscale Analytics’, also known as our product line 'neaspec', develops ultra-fast, high-resolution optical imaging and spectroscopy nanoscopes for nanoscale optical surface analysis.\u003C/p>","2023-07-06T12:02:27.722Z","2024-09-12T14:14:39.306Z","2023-07-06T12:02:31.263Z","265",{"id":977,"name":978,"alternativeText":13,"caption":13,"width":979,"height":980,"formats":981,"hash":1005,"ext":850,"mime":853,"size":1006,"url":1007,"previewUrl":13,"provider":26,"provider_metadata":13,"createdAt":1008,"updatedAt":1008},88,"attocube-logo.jpg",2139,975,{"large":982,"small":988,"medium":994,"thumbnail":999},{"ext":850,"url":983,"hash":984,"mime":853,"name":985,"path":13,"size":986,"width":76,"height":987},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/mmm23/large_attocube_logo_0cf1b882ee.jpg","large_attocube_logo_0cf1b882ee","large_attocube-logo.jpg",24.46,456,{"ext":850,"url":989,"hash":990,"mime":853,"name":991,"path":13,"size":992,"width":83,"height":993},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/mmm23/small_attocube_logo_0cf1b882ee.jpg","small_attocube_logo_0cf1b882ee","small_attocube-logo.jpg",10.85,228,{"ext":850,"url":995,"hash":996,"mime":853,"name":997,"path":13,"size":998,"width":90,"height":628},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/mmm23/medium_attocube_logo_0cf1b882ee.jpg","medium_attocube_logo_0cf1b882ee","medium_attocube-logo.jpg",18.31,{"ext":850,"url":1000,"hash":1001,"mime":853,"name":1002,"path":13,"size":1003,"width":97,"height":1004},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/mmm23/thumbnail_attocube_logo_0cf1b882ee.jpg","thumbnail_attocube_logo_0cf1b882ee","thumbnail_attocube-logo.jpg",4.44,111,"attocube_logo_0cf1b882ee",61.47,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/mmm23/attocube_logo_0cf1b882ee.jpg","2023-07-06T11:49:20.559Z",{"id":778,"variation":13,"button":1010},[1011],{"id":1012,"label":882,"size":110,"color":111,"style":13,"icon":112,"iconPosition":113,"url":1013,"newWindow":8,"downloadable":13,"shape":13},61,"http://www.attocube.com","-160",{"id":273,"name":1016,"description":1017,"createdAt":1018,"updatedAt":1019,"publishedAt":1020,"url_path_id":1021,"logo":1022,"website":1043,"url_path":1049},"Bruker","\u003Cp>Bruker's SmartTip™ CIPT solutions offer several high-field, high-accuracy instruments for both industry and academia to perform current-in-plane tunneling measurements. Both in-plane and perpendicular field options are available.\u003C/p>\u003Cp>Driven by a mission to provide innovative solutions to our customers, we aim to enable MEMS-based microprobe technologies through co-operation and collaboration with our customers. Our SmartTip solutions are positioned to advance high-tech nanotechnology-based microprobe applications with a commitment to quality and continuous improvement in development.\u003C/p>","2023-07-06T12:03:09.075Z","2024-04-23T01:32:34.933Z","2023-07-06T12:03:11.289Z","266",{"id":1023,"name":1024,"alternativeText":13,"caption":13,"width":1025,"height":939,"formats":1026,"hash":1039,"ext":70,"mime":73,"size":1040,"url":1041,"previewUrl":13,"provider":26,"provider_metadata":13,"createdAt":1042,"updatedAt":1042},86,"Bruker logo.png",696,{"small":1027,"thumbnail":1033},{"ext":70,"url":1028,"hash":1029,"mime":73,"name":1030,"path":13,"size":1031,"width":83,"height":1032},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/mmm23/small_Bruker_logo_00efb3b00f.png","small_Bruker_logo_00efb3b00f","small_Bruker logo.png",31.55,267,{"ext":70,"url":1034,"hash":1035,"mime":73,"name":1036,"path":13,"size":1037,"width":97,"height":1038},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/mmm23/thumbnail_Bruker_logo_00efb3b00f.png","thumbnail_Bruker_logo_00efb3b00f","thumbnail_Bruker logo.png",13.69,131,"Bruker_logo_00efb3b00f",12.64,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/mmm23/Bruker_logo_00efb3b00f.png","2023-07-06T11:49:19.733Z",{"id":400,"variation":13,"button":1044},[1045],{"id":1046,"label":1047,"size":110,"color":111,"style":13,"icon":112,"iconPosition":113,"url":1048,"newWindow":8,"downloadable":13,"shape":13},62,"View Website","http://www.bruker.com/nano","-161",{"id":145,"name":1051,"description":1052,"createdAt":1053,"updatedAt":1054,"publishedAt":1055,"url_path_id":1056,"logo":1057,"website":1090,"url_path":1094},"NanoMagnetics Instruments","\u003Cp>Founded in 1998, NanoMagnetics Instruments (NMI) has gradually evolved into one of the world’s leading manufacturers of Scanning Probe Microscopes (SPMs) and measurement systems for a variety of scientific and technological fields. Within this scope NMI introduces, markets and sells its products worldwide with the support of many distribution partners situated at key locations almost at every continent around the globe. With a team of more than 60 personnel; each of whom are highly accomplished experts in their own right; all of our system design, development, manufacturing, assembly, integration and testing are done in-house.\u003C/p>","2023-07-06T12:03:51.033Z","2024-09-12T14:15:38.032Z","2023-07-06T12:03:52.747Z","267",{"id":1058,"name":1059,"alternativeText":13,"caption":13,"width":1060,"height":1061,"formats":1062,"hash":1086,"ext":70,"mime":73,"size":1087,"url":1088,"previewUrl":13,"provider":26,"provider_metadata":13,"createdAt":1089,"updatedAt":1089},238,"NanoMagnetics Instruments.png",1414,274,{"large":1063,"small":1069,"medium":1075,"thumbnail":1081},{"ext":70,"url":1064,"hash":1065,"mime":73,"name":1066,"path":13,"size":1067,"width":76,"height":1068},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/mmm25/large_Nano_Magnetics_Instruments_702804a8e3.png","large_Nano_Magnetics_Instruments_702804a8e3","large_NanoMagnetics Instruments.png",55.47,194,{"ext":70,"url":1070,"hash":1071,"mime":73,"name":1072,"path":13,"size":1073,"width":83,"height":1074},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/mmm25/small_Nano_Magnetics_Instruments_702804a8e3.png","small_Nano_Magnetics_Instruments_702804a8e3","small_NanoMagnetics Instruments.png",24.64,97,{"ext":70,"url":1076,"hash":1077,"mime":73,"name":1078,"path":13,"size":1079,"width":90,"height":1080},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/mmm25/medium_Nano_Magnetics_Instruments_702804a8e3.png","medium_Nano_Magnetics_Instruments_702804a8e3","medium_NanoMagnetics Instruments.png",39.41,145,{"ext":70,"url":1082,"hash":1083,"mime":73,"name":1084,"path":13,"size":1085,"width":97,"height":762},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/mmm25/thumbnail_Nano_Magnetics_Instruments_702804a8e3.png","thumbnail_Nano_Magnetics_Instruments_702804a8e3","thumbnail_NanoMagnetics Instruments.png",10.32,"Nano_Magnetics_Instruments_702804a8e3",22.19,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/mmm25/Nano_Magnetics_Instruments_702804a8e3.png","2024-09-11T21:31:46.250Z",{"id":381,"variation":13,"button":1091},[1092],{"id":862,"label":882,"size":110,"color":111,"style":13,"icon":112,"iconPosition":113,"url":1093,"newWindow":8,"downloadable":13,"shape":13},"https://www.nanomagnetics-inst.com/ ","-162",{"id":250,"name":1096,"description":1097,"createdAt":1098,"updatedAt":1099,"publishedAt":1100,"url_path_id":1101,"logo":1102,"website":1122,"url_path":1127},"Quantum Design","\u003Cp>Quantum Design manufactures automated material characterization systems providing temperatures from 0.05 to 1000 K, magnetic fields up to 16 tesla, and a wide range of measurements, including: magnetometry, electrical transport, heat capacity, thermal transport, and FMR. Instruments include the PPMS®, SQUID-based MPMS®3, VersaLab®, and DynaCool®. Additionally, Quantum Design manufactures helium liquefiers and recovery systems, an innovative 7 tesla magneto-optical cryostat (OptiCool®), and a correlated AFM/SEM microscopy platform (FusionScope™). 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Our product line includes scanning diamond tips, diamond membranes with pillars, a confocal microscope for NV and diamond characterization as well as a turnkey scanning NV magnetometer (QSM). The QSM combines nanometer resolution with quantitative mapping of magnetic fields with uT-sensitivity at unprecedented speed. Demonstrated applications of the QSM include imaging magnetic textures such as spin cycloids, skyrmions, domain walls, antiferromagnets and ferromagnets, investigating memory devices and mapping surface current densities. 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Fundamental Properties and Cooperative Phenomena","\u003Col style=\"list-style-type:lower-latin;\">\u003Cli>Electronic Structure and Critical Phenomena\u003C/li>\u003Cli>Highly Frustrated Magnetism, Spin Glasses and Heavy Fermion Systems\u003C/li>\u003Cli>Quantum Materials and Cooperative States: Superconductivity, Spin Liquids, Chern Insulators\u003C/li>\u003Cli>f-electron Magnetism, Low-Dimensional Systems\u003C/li>\u003Cli>Molecular and Organic Magnets\u003C/li>\u003Cli>Topological Insulators and Dirac Materials\u003C/li>\u003Cli>2D Materials and Layered van der Waals Materials\u003C/li>\u003C/ol>",{"id":5,"heading":1803,"prose":1804},"2. Magnetoelectronic Materials and Phenomena","\u003Col style=\"list-style-type:lower-latin;\">\u003Cli>Heusler Alloys\u003C/li>\u003Cli>Complex Oxides\u003C/li>\u003Cli>Half-Metallic Materials and Magnetic Semiconductors\u003C/li>\u003Cli>Multiferroics and Magnetoelectric Phenomena and Materials\u003C/li>\u003Cli>Voltage-Controlled Magnetic Anisotropy\u003C/li>\u003Cli>Magneto-Ionics\u003C/li>\u003C/ol>",{"id":175,"heading":1806,"prose":1807},"3. Soft Magnetic Materials","\u003Col style=\"list-style-type:lower-latin;\">\u003Cli>Ferrites and Garnets\u003C/li>\u003Cli>Crystalline Alloys\u003C/li>\u003Cli>Amorphous and Nanocrystalline Materials\u003C/li>\u003Cli>Magneto-Dielectric Materials\u003C/li>\u003C/ol>",{"id":226,"heading":1809,"prose":1810},"4. Hard Magnetic Materials","\u003Col style=\"list-style-type:lower-latin;\">\u003Cli>Rare-Earth Compounds\u003C/li>\u003Cli>Intermetallic Alloys\u003C/li>\u003Cli>Nanostructured and Composite Hard Magnetic Materials\u003C/li>\u003Cli>Other Hard Magnetic Materials\u003C/li>\u003Cli>Rare-Earth Free Hard Magnetic Materials\u003C/li>\u003C/ol>",{"id":315,"heading":1812,"prose":1813},"5. Structured Materials","\u003Col style=\"list-style-type:lower-latin;\">\u003Cli>Thin Films and Surface Effects\u003C/li>\u003Cli>Multi-Layered Films and Superlattices\u003C/li>\u003Cli>Patterned Films and Elements\u003C/li>\u003Cli>Exchange Bias\u003C/li>\u003Cli>Nanoparticle and Nanowire (Individual and Arrays) and Self-Assembly\u003C/li>\u003Cli>Nanocomposite Magnetic Materials\u003C/li>\u003Cli>3D and Other Magnetic Structures\u003C/li>\u003C/ol>",{"id":189,"heading":1815,"prose":1816},"6. Materials with Coupled Magnetic Functionality","\u003Col style=\"list-style-type:lower-latin;\">\u003Cli>Magneto-Optical Materials\u003C/li>\u003Cli>Magneto-Elastic Materials\u003C/li>\u003Cli>Magneto-Caloric and Multi-Caloric Materials\u003C/li>\u003Cli>New Coupled Magnetic Phenomena\u003C/li>\u003C/ol>",{"id":30,"heading":1818,"prose":1819},"7. Spintronics - Fundamentals and Devices","\u003Col style=\"list-style-type:lower-latin;\">\u003Cli>Magnetoresistance (Homogenous Materials, GMR, TMR, TAMR)\u003C/li>\u003Cli>Spin Injection, Damping and Spin Pumping\u003C/li>\u003Cli>Spins Transport in Graphene, Topological Insulators, and 2D Materials\u003C/li>\u003Cli>Spin Caloritronics and Topological Thermoelectrics\u003C/li>\u003Cli>Spintronic Devices (MRAM, Magnetic Logic, Oscillators, Detectors, etc.)\u003C/li>\u003Cli>Spin-Orbitronics (Spin-Orbit Torque, Orbital Torque, Dzyaloshinskii-Moriya Interaction)\u003C/li>\u003Cli>Spin-Orbitronics Devices\u003C/li>\u003Cli>Antiferromagnetic and Ferrimagnetic Spintronics\u003C/li>\u003Cli>THz Spintronics\u003C/li>\u003Cli>Altermagnets\u003C/li>\u003C/ol>",{"id":57,"heading":1821,"prose":1822},"8. Magnetization Dynamics and Micromagnetics","\u003Col style=\"list-style-type:lower-latin;\">\u003Cli>Ultrafast Magnetization Dynamics and Switching\u003C/li>\u003Cli>Spin Waves and Magnonics\u003C/li>\u003Cli>Magnetic Texture Static and Dynamics (Domain Wall, Skyrmions, Hopfions, etc.)\u003C/li>\u003Cli>Micromagnetic and Hysteresis Modeling\u003C/li>\u003Cli>Modeling of Magnetic Metamaterials\u003C/li>\u003Cli>New Approaches in Computational Magnetism\u003C/li>\u003C/ol>",{"id":196,"heading":1824,"prose":1825},"9. Magnetic Recording","\u003Col style=\"list-style-type:lower-latin;\">\u003Cli>Recording Media, Write and Read Heads\u003C/li>\u003Cli>Energy-Assisted Recording\u003C/li>\u003Cli>All-Optical Recording and Other New Recording\u003C/li>\u003Cli>Recording Physics, Modeling, Theory, and Testing\u003C/li>\u003C/ol>",{"id":145,"heading":1827,"prose":1828},"10. Sensors and Applications","\u003Col style=\"list-style-type:lower-latin;\">\u003Cli>Sensors (Non-Recording Devices and Concepts)\u003C/li>\u003Cli>Microwave and Millimeter Wave Materials and Devices\u003C/li>\u003Cli>Shielding, Bearings, and Levitation\u003C/li>\u003Cli>Applications to Internet of Things (IoT)\u003C/li>\u003Cli>Security with Magnetic Materials and Devices\u003C/li>\u003Cli>New Applications\u003C/li>\u003C/ol>",{"id":250,"heading":1830,"prose":1831},"11. Microscopy, Imaging, and Magnetic Characterization","\u003Col style=\"list-style-type:lower-latin;\">\u003Cli>Instrumentation and Measurement Techniques\u003C/li>\u003Cli>Magnetic Microscopy and Imaging\u003C/li>\u003C/ol>",{"id":273,"heading":1833,"prose":1834},"12. Interdisciplinary and Emerging Topics","\u003Col style=\"list-style-type:lower-latin;\">\u003Cli>Bio-Magnetism and Biomedical Applications\u003C/li>\u003Cli>Biomedical Diagnostics and Imaging\u003C/li>\u003Cli>Biomedical Therapies and Nanomedicine\u003C/li>\u003Cli>Magnetic Fluids and Separations\u003C/li>\u003Cli>Geomagnetism\u003C/li>\u003Cli>Interdisciplinary and Emerging Topics Related to Magnetism and Magnetic Materials\u003C/li>\u003C/ol>",{"id":304,"heading":1836,"prose":1837},"13. Electrical Machines and Power Electronics","\u003Col style=\"list-style-type:lower-latin;\">\u003Cli>(Semi)-Analytical and Numerical Techniques for Design\u003C/li>\u003Cli>Magnetic Aspects of Electrical Machine Optimization\u003C/li>\u003Cli>Magnetic Loss and Thermal Modeling and Measurements\u003C/li>\u003Cli>High-Speed Machines\u003C/li>\u003Cli>Wound-Field and Multi-Excited Rotating Electrical Machines\u003C/li>\u003Cli>Induction and Reluctance Machines\u003C/li>\u003Cli>Magnetic Bearings and Magnetic Levitation\u003C/li>\u003Cli>Transformers, Inductors and Magnetic Aspects Related to Power Electronics\u003C/li>\u003Cli>Linear Machines, Actuators, and Application\u003C/li>\u003Cli>Surface and Interior Permanent Magnet Machines\u003C/li>\u003Cli>Non-Rare Earth Permanent Magnet Machines\u003C/li>\u003Cli>Reluctance Machines\u003C/li>\u003C/ol>",{"id":164,"heading":1839,"prose":1840},"14. Special Machines and Geared Machines","\u003Col style=\"list-style-type:lower-latin;\">\u003Cli>Magnetically Geared Electrical Machines\u003C/li>\u003Cli>Vernier Machines\u003C/li>\u003Cli>Memory and Variable Flux Machines\u003C/li>\u003Cli>Special Rotating Electrical Machines\u003C/li>\u003C/ol>",{"id":333,"heading":1842,"prose":1843},"15. Energy Harvesting, Vibration Analysis and Advanced Materials/Manufacturing","\u003Col style=\"list-style-type:lower-latin;\">\u003Cli>Energy Harvesting Applications\u003C/li>\u003Cli>Magnetic Aspects of Vibration Analysis\u003C/li>\u003Cli>Additive Magnetic Material Modeling and Application\u003C/li>\u003C/ol>",{"id":297,"heading":1845,"prose":1846},"16. Computing with Magnetism and Magnetic Materials","\u003Col style=\"list-style-type:lower-latin;\">\u003Cli>AI and Machine Learning\u003C/li>\u003Cli>Neuromorphic Computing\u003C/li>\u003Cli>Reservoir Computing\u003C/li>\u003Cli>Reversible Computing\u003C/li>\u003Cli>Quantum Transduction and Spin Qubits\u003C/li>\u003Cli>Ising Machines\u003C/li>\u003Cli>Probabilistic and Unconventional Computing\u003C/li>\u003C/ol>",{"data":1848,"meta":1849},{"id":226,"heading":305,"createdAt":310,"updatedAt":311,"publishedAt":312,"url_path_id":313,"url_path":306,"contentType":136},{},1778853207042]