Books on the topic 'Nanoscale properties'

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1

W, Kelsall Robert, Hamley Ian W, and Geoghegan Mark, eds. Nanoscale science and technology. Chichester, England: John Wiley & Sons, 2005.

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2

Diebold, Alain, and Tino Hofmann. Optical and Electrical Properties of Nanoscale Materials. Cham: Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-80323-0.

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3

Pandey, Lalit M., and Abshar Hasan, eds. Nanoscale Engineering of Biomaterials: Properties and Applications. Singapore: Springer Singapore, 2022. http://dx.doi.org/10.1007/978-981-16-3667-7.

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4

Hachtel, Jordan A. The Nanoscale Optical Properties of Complex Nanostructures. Cham: Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-319-70259-9.

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5

P, Ivanova Elena, ed. Nanoscale structure and properties of microbial cells surfaces. New York: Nova Science Publishers, 2007.

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6

Bellucci, Stefano, ed. Physical Properties of Ceramic and Carbon Nanoscale Structures. Berlin, Heidelberg: Springer Berlin Heidelberg, 2011. http://dx.doi.org/10.1007/978-3-642-15778-3.

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7

Liu, J. Ping. Nanoscale Magnetic Materials and Applications. Boston, MA: Springer Science+Business Media, LLC, 2009.

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8

Experimental micro/nanoscale thermal transport. Hoboken, New Jersey: Wiley, 2012.

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9

Christine, Mottet, Ricolleau Christian, and SpringerLink (Online service), eds. Nanoalloys: Synthesis, Structure and Properties. London: Springer London, 2012.

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10

Cheng, Lixin. Frontier research in microscale and nanoscale thermal and fluid sciences. Hauppauge, N.Y: Nova Science Publishers, 2011.

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11

Bellucci, Stefano. Physical Properties of Ceramic and Carbon Nanoscale Structures: The INFN Lectures, Vol. II. Berlin, Heidelberg: Springer-Verlag Berlin Heidelberg, 2011.

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12

Pogrebnjak, Alexander D., and Oleksandr Bondar, eds. Microstructure and Properties of Micro- and Nanoscale Materials, Films, and Coatings (NAP 2019). Singapore: Springer Singapore, 2020. http://dx.doi.org/10.1007/978-981-15-1742-6.

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13

Meeting, Materials Research Society, and Symposium II, "Probing Mechanics at Nanoscale Dimensions" (2009 : San Francisco, Calif.), eds. Probing mechanics at nanoscale dimensions: Symposium held April 14-17, 2009, San Francisco, California, U.S.A. Warrendale, PA: Materials Research Society, 2009.

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14

Krahne, Roman. Physical Properties of Nanorods. Berlin, Heidelberg: Springer Berlin Heidelberg, 2013.

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15

Ferroelectric crystals for photonic applications: Including nanoscale fabrication and characterization techniques. Berlin: Springer, 2009.

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16

service), SpringerLink (Online, ed. Graphene Nanoelectronics: Metrology, Synthesis, Properties and Applications. Berlin, Heidelberg: Springer Berlin Heidelberg, 2012.

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17

Symposium P, "Nanoscale Materials and Modeling--Relations Among Processing, Microstructure and Mechanical Properties" (2004 San Francisco, Calif.). Nanoscale materials and modeling--relations among processing, microstructure and mechanical properties: Symposium held April 13-16, 2004, San Francisco, California, U.S.A. Edited by Anderson Peter M, Materials Research Society, and Materials Research Society Meeting. Warrendale, Pa: Materials Research Society, 2004.

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18

Markus, Winterer, Schmechel Roland, Schulz Christof, and SpringerLink (Online service), eds. Nanoparticles from the Gasphase: Formation, Structure, Properties. Berlin, Heidelberg: Springer Berlin Heidelberg, 2012.

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19

Atlanta, Georgia) Micro/Nanoscale Heat and Mass Transfer International Conference (2012. Proceedings of the ASME Micro/Nanoscale Heat and Mass Transfer International Conference -- 2012: Presented at the ASME 2012 3rd Micro/Nanoscale Heat and Mass Transfer International Conference, March 3-6, 2012, Atlanta, Georgia. New York: American Society of Mechanical Engineers, 2012.

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20

service), SpringerLink (Online, ed. Self-Organized Arrays of Gold Nanoparticles: Morphology and Plasmonic Properties. Berlin, Heidelberg: Springer Berlin Heidelberg, 2012.

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21

Materials Research Society. Meeting Symposium P. and Symposium P, "Deformation Mechanisms, Microstructure Evolution, and Mechanical Properties of Nanoscale Materials" (2010 Boston, Mass.). Deformation mechanisms, microstructure evolution and mechanical properties of nanoscale materials: Symposium held November 29-December 3 [2010], Boston, Massachusetts, U.S.A. Edited by Greer Julia Rosolovsky and Materials Research Society. Warrendale, Pa: Materials Research Society, 2011.

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22

Anderson, Peter M. (Peter Martin) and Materials Research Society, eds. Properties and processes at the nanoscale: Nanomechanics of material behavior : symposium held November 28-December 2, 2011, Boston, Massachusetts, U.S.A. Warrendale, Pa: Materials Research Society, 2012.

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23

Symposium, A. on Microstructuring and Microsystems (1995 Strasbourg France). Small scale structures: Proceedings of Symposium A on Microstructuring and Microsystems, Symposium B on Materials for Sensors: Functional Nanoscaled Structures, and Symposium E on Structure and Properties of Metallic Thin Films and Multilayers of the 1995 E-MRS Spring Conference, Strasbourg, France, May 22-26, 1995. Amsterdam: Elsevier, 1996.

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24

Fu, Huaxiang. Unusual properties of nanoscale ferroelectrics. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533053.013.19.

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This article describes the unusual properties of nanoscale ferroelectrics (FE), including widely tunable polarization and improved properties in strained ferroelectric thin films; polarization enhancement in superlattices; polarization saturation in ferroelectric thin films under very large inplane strains; occurrence of ferroelectric phase transitions in one-dimensional wires; existence of the toroidal structural phase in ferroelectric nanoparticles; and the symmetry-broken phase-transition path when one transforms a vortex phase into a polarization phase. The article first considers some of the critical questions on low-dimensional ferroelectricity before discussing the theoretical approaches used to determine the properties of ferroelectric nanostructures. It also looks at 2D ferroelectric structures such as surfaces, superlattices and thin films, along with 1D ferroelectric nanowires and ferroelectric nanoparticles.
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25

(Editor), Robert Kelsall, Ian W. Hamley (Editor), and Mark Geoghegan (Editor), eds. Nanoscale Science and Technology. Wiley, 2005.

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26

Wada, Hiroshi. Biomechanics At Micro and Nanoscale Levels. World Scientific Publishing Company, 2005.

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27

Biomechanics at Micro- And Nanoscale Levels. World Scientific Publishing Company, 2006.

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28

Z, Livne, and National Institute of Standards and Technology (U.S.), eds. Consolidation of nanoscale iron powders. Gaithersburg, MD: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 1997.

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29

Diebold, Alain, and Tino Hofmann. Optical and Electrical Properties of Nanoscale Materials. Springer International Publishing AG, 2021.

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30

Pandey, Lalit M., and Abshar Hasan. Nanoscale Engineering of Biomaterials: Properties and Applications. Springer Singapore Pte. Limited, 2021.

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31

Hachtel, Jordan A. The Nanoscale Optical Properties of Complex Nanostructures. Springer, 2017.

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32

Hachtel, Jordan A. The Nanoscale Optical Properties of Complex Nanostructures. Springer, 2018.

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33

Thermal Energy at the Nanoscale. World Scientific Publishing Co Pte Ltd, 2013.

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34

2D Nanoscale Heterostructured Materials: Synthesis, Properties and Applications. Elsevier, 2020.

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35

Das, Santanu, and Satyabrata Jit. 2D Nanoscale Heterostructured Materials: Synthesis, Properties and Applications. Elsevier, 2020.

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36

Ivanova, Elena P. Nanoscale Structure and Properties of Microbial Cell Surfaces. Nova Science Publishers, 2006.

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37

Biomechanics at micro- and nanoscale levels: Volume 1. Singapore: World Scientific, 2004.

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38

Biomechanics at Micro- and Nanoscale Levels: Volume III. World Scientific Publishing Company, 2007.

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39

Gutfleisch, Oliver, J. Ping Liu, D. J. Sellmyer, and Eric Fullerton. Nanoscale Magnetic Materials and Applications. Springer, 2014.

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40

Gleason, Karen K., and Meysam Heydari Gharahcheshmeh. Conjugated Polymers at Nanoscale: Engineering Orientation, Nanostructure, and Properties. de Gruyter GmbH, Walter, 2021.

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41

Gleason, Karen K., and Meysam Heydari Gharahcheshmeh. Conjugated Polymers at Nanoscale: Engineering Orientation, Nanostructure, and Properties. de Gruyter GmbH, Walter, 2021.

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42

Seehra, Mohindar Singh, and Alan D. Bristow, eds. Noble and Precious Metals - Properties, Nanoscale Effects and Applications. InTech, 2018. http://dx.doi.org/10.5772/intechopen.69142.

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43

Gleason, Karen K., and Meysam Heydari Gharahcheshmeh. Conjugated Polymers at Nanoscale: Engineering Orientation, Nanostructure, and Properties. De Gruyter, 2021.

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44

Seehra, Mohindar Singh, and Alan D. Bristow. Noble and Precious Metals: Properties, Nanoscale Effects and Applications. IntechOpen, 2018.

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45

Alloyeau, Damien, Christine Mottet, and Christian Ricolleau. Nanoalloys: Synthesis, Structure and Properties. Springer, 2012.

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46

Tiwari, Sandip. Nanoscale Device Physics. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198759874.001.0001.

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Nanoscale devices are distinguishable from the larger microscale devices in their specific dependence on physical phenomena and effects that are central to their operation. The size change manifests itself through changes in importance of the phenomena and effects that become dominant and the changes in scale of underlying energetics and response. Examples of these include classical effects such as single electron effects, quantum effects such as the states accessible as well as their properties; ensemble effects ranging from consequences of the laws of numbers to changes in properties arising from different magnitudes of the inter-actions, and others. These interactions, with the limits placed on size, make not just electronic, but also magnetic, optical and mechanical behavior interesting, important and useful. Connecting these properties to the behavior of devices is the focus of this textbook. Description of the book series: This collection of four textbooks in the Electroscience series span the undergraduate-to-graduate education in electrosciences for engineering and science students. It culminates in a comprehensive under-standing of nanoscale devices—electronic, magnetic, mechanical and optical in the 4th volume, and builds to it through volumes devoted to underlying semiconductor and solid-state physics with an emphasis on phenomena at surfaces and interfaces, energy interaction, and fluctuations; a volume devoted to the understanding of the variety of devices through classical microelectronic approach, and an engineering-focused understanding of principles of quantum, statistical and information mechanics. The goal is provide, with rigor and comprehensiveness, an exposure to the breadth of knowledge and interconnections therein in this subject area that derives equally from sciences and engineering. By completing this through four integrated texts, it circumvents what is taught ad hoc and incompletely in a larger number of courses, or not taught at all. A four course set makes it possible for the teaching curriculum to be more comprehensive in this and related advancing areas of technology. It ends at a very modern point, where researchers in the subject area would also find the discussion and details an important reference source.
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47

Alloyeau, Damien. Nanoalloys: Synthesis, Structure and Properties. Springer, 2014.

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48

Cheng, Lixin. Advances in Microscale and Nanoscale Thermal and Fluid Sciences. Nova Science Publishers, Incorporated, 2013.

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49

Cheng, Lixin. Progress in Microscale and Nanoscale Thermal and Fluid Sciences. Nova Science Publishers, Incorporated, 2015.

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50

Bi, J. F., and K. L. Teo. Nanoscale Ge1−xMnxTe ferromagnetic semiconductors. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533053.013.17.

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This article discusses the structure characterizations, magnetic and transport behaviors of the nanoscale ferromagnetic semiconductors Ge1-xMnxTe grown by molecular beam epitaxy with various manganese compositions x ranging from 0.14 to 0.98. After providing an overview of the growth procedure and characterization, the article analyzes the structures of the Ge1-xMnxTe system using X-ray diffraction and high-resolution transmission electron microscopy. It then considers the optical, magnetic and transport properties of the semiconductors and shows that the crystal quality is degraded and the proportion of amorphous phase increases with increasing Mn composition. Nanoclusters and nanoscale grains can be observed when x > 0.24, which greatly affect their magnetic and electronic properties. The magnetic anisotropy is weakened due to different orientations of the clusters embedded in the GeTe host. An anomalous Hall effect is also observed in the samples, which can be attributed to extrinsic skew scattering.
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