Mitsu Murayama
教授
Institute for Materials Chemistry and Engineering
Kyushu University;Pacific Northwest National Laboratory;Materials Science and Engineering, College of Engineering, Virginia Tech;The Virginia Tech National Center for Earth and Environmental Nanotechnology Infrastructure
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From its inception nearly a century ago, transmission electron microscopy (TEM) has emerged as a cornerstone of characterization in materials science, chemistry, physics, biology, and medicine. TEM provides rich, directly resolved information about the structure and dynamics of phenomena spanning atoms to micrometers that are of great fundamental and practical significance to society. It has played a key role in protein and drug discovery, redefined our understanding of crystalline solids and catalyzed the electronics revolution that gave rise to today's massively interconnected world.
From its inception nearly a century ago, transmission electron microscopy (TEM) has emerged as a cornerstone of characterization in materials science, chemistry, physics, biology, and medicine. TEM provides rich, directly resolved information about the structure and dynamics of phenomena spanning atoms to micrometers that are of great fundamental and practical significance to society. It has played a key role in protein and drug discovery, redefined our understanding of crystalline solids and catalyzed the electronics revolution that gave rise to today's massively interconnected world.
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论文共 159 篇作者统计合作学者相似作者
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Elsevier eBookspp.265-301, (2023)
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Materials Science and Engineering: A (2023): 144506-144506
J. V. Haag IV,J. Wang,K. Kruska,M. J. Olszta,C. H. Henager Jr., D. J. Edwards,W. Setyawan,M. Murayama
Scientific reportsno. 1 (2023): 575-11
Journal of The Society of Materials Science, Japanno. 9 (2023): 631-637
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Materials Science and Engineering: A (2023): 145089-145089
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MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING (2023): 145214-145214
Materia Japanno. 2 (2022): 84-88
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