Executive Summary |
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1 | (6) |
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7 | (7) |
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The Importance of Magnetism in the Modern World |
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7 | (1) |
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The Significance of High Magnetic Field Research |
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8 | (1) |
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The Task of the Committee |
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9 | (1) |
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Definition of High Magnetic Field |
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10 | (1) |
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10 | (4) |
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Scientific Challenges and Opportunities with Higher Fields |
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14 | (55) |
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Condensed-Matter and Materials Physics |
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15 | (31) |
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High-Temperature Superconductivity |
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18 | (10) |
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28 | (6) |
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Low-Dimensional Semiconductors |
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34 | (4) |
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Organic Conductors and Superconductors |
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38 | (2) |
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Combining High Fields with X-Ray and Neutron Scattering |
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40 | (4) |
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44 | (2) |
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High-Field Facilities for Materials Research |
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46 | (1) |
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Magnetic and Ion Cyclotron Resonance: Applications of High Fields to Biology, Chemistry, and Materials Research |
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46 | (20) |
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47 | (3) |
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The Role of Field Strength in NMR |
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50 | (2) |
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Recent Developments in Solution NMR |
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52 | (1) |
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53 | (1) |
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NMR in Condensed-Matter Physics |
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54 | (2) |
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Magnetic Resonance Imaging |
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56 | (1) |
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Prospects for Improvements with Still Higher Fields |
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57 | (4) |
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Strategic Considerations for Higher Field NMR |
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61 | (1) |
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62 | (1) |
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Electron Paramagnetic Resonance |
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63 | (1) |
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Importance of Ancillary Technological Development |
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64 | (2) |
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Other Scientific Uses of High-Field Magnets |
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66 | (3) |
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Technological Challenges and Opportunities for Developing Higher Fields |
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69 | (34) |
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69 | (4) |
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73 | (2) |
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74 | (1) |
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Outlook for Resistive DC Magnets |
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75 | (1) |
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75 | (7) |
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Advantages and Disadvantages |
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78 | (3) |
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The Potential for Expanding the Use of Pulsed Magnets |
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81 | |
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Outlook for Pulsed Magnets |
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8 | (74) |
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82 | (1) |
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Superconductors Used for Magnet Construction |
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83 | (1) |
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84 | (1) |
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Additional Conductor Requirements: H |
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85 | (3) |
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Critical Current Densities |
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88 | (1) |
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Existing Conductor Materials |
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88 | (10) |
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Emerging Superconducting Materials |
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93 | (3) |
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Superconducting Magnet Design |
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96 | (2) |
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Outlook for Superconducting Magnets |
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98 | (1) |
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98 | (4) |
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100 | (1) |
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Outlook for Hybrid Magnets |
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101 | (1) |
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Coordination of Magnet Development |
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102 | (1) |
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Conclusions and Recommendations |
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103 | |
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103 | |
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Current State and Future Prospects |
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103 | |
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U.S. High-Field Efforts in the International Context |
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104 | |
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Promising Multidisciplinary Areas for Research and Development |
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105 | |
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Major Construction Initiatives for the Coming Decade |
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106 | |
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106 | |
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Nobel Prizes for Research That Used or Significantly Affected the Development of High Magnetic Fields |
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115 | |
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High-Field Magnet Facilities Around the World |
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116 | |
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138 | |
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147 | |
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151 | |
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Biographies of Committee Members and Staff |
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154 | |
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Tutorial on High-Temperature Superconductivity |
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162 | |
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Tutorial on Frontiers in Vortex Physics |
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166 | |