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Books on the topic 'Mesoscopic mechanics'

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1

1940-, Kitagawa Hiroshi, Aihara T. 1964-, and Kawazoe Y. 1947-, eds. Mesoscopic dynamics of fracture: Computational materials design. Berlin: New York, 1998.

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2

IUTAM Symposium on Mesoscopic Dynamics of Fracture Process and Materials Strength (2003 Osaka, Japan). IUTAM Symposium on Mesoscopic Dynamics of Fracture Process and Materials Strength: Proceedings of the IUTAM symposium held in Osaka, Japan, 6-11 July, 2003. New York: Kluwer Academic Publishers, 2004.

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3

IUTAM Symposium on Mesoscopic Dynamics of Fracture Process and Materials Strength (2003 Osaka, Japan). IUTAM Symposium on Mesoscopic Dynamics of Fracture Process and Materials Strength: Proceedings of the IUTAM symposium held in Osaka, Japan, 6-11 July, 2003 : volume in celebration of Professor Kitagawa's retirement. Dordrecht: Kluwer Academic Publishers, 2004.

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4

International Symposium Foundations of Quantum Mechanics in the Light of New Technology (5th 1995 Hatoyama-machi, Japan). Quantum coherence and decoherence: Foundations of quantum mechanics in the light of new technology : proceedings of the 5th International Symposium on Foundations of Quantum Mechanics in the Light of New Technology (ISQM-Tokyo '95) Advanced Research Laboratory, Hitachi, Ltd., Hatoyama, Saitama, Japan, August 21-24, 1995. Amsterdam: Elsevier/North Holland, 1996.

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5

Drexel Symposium on Quantum Nonintegrability (4th 1994 Philadelphia, Pa.). Quantum classical correspondence: Proceedings of the 4th Drexel Symposium on Quantum Nonintegrability, Drexel University, Philadelphia, USA, September 8-11, 1994. Cambridge, MA: International Press, 1997.

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6

International, Symposium on Foundations of Quantum Mechanicsin the Light of New Technology (5th 1995 Hatoyama Japan). Quantum coherence and decoherence: Foundations of quantum mechanics in the light of new technology : proceedings of the 5th International Symposium on Foundations of QuantumMechanics in the Light of New Technology (ISQM-Tokyo '95), Advanced Research Laboratory, Hitachi, Ltd., Hatoyama, Saitama, Japan, August 21-24, 1995. New York: Elsevier, 1996.

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7

Kitagawa, Hiroshi, Yoshiyuki Kawazoe, and Tomoyasu Aihara Jr. Mesoscopic Dynamics of Fracture: Computational Materials Design. Springer, 2010.

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8

Aihara, Tomoyasu Jr, Hiroshi Kitagawa, and Yoshiyuki Kawazoe. Mesoscopic Dynamics of Fracture: Computational Materials Design. Springer London, Limited, 2013.

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9

Guyer, Robert A., and Paul A. Johnson. Nonlinear Mesoscopic Elasticity: The Complex Behaviour of Rocks, Soil, Concrete. Wiley & Sons, Incorporated, John, 2009.

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10

Reguera, D., L. L. Bonilla, G. Platero, and J. M. Rubi. Statistical and Dynamical Aspects of Mesoscopic Systems: Proceedings of the XVI Sitges Conference on Statistical Mechanics Held at Sitges, Barcelona, Spain, 7-11 June 1999. Springer London, Limited, 2008.

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11

Reguera, D., J. M. Rubi, G. Platero, and L. L. Bonilla. Statistical and Dynamical Aspects of Mesoscopic Systems: Proceedings of the XVI Sitges Conference on Statistical Mechanics Held at Sitges, Barcelona, ... June 1999. Springer, 2013.

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12

The mesoscopic theory of polymer dynamics. 2nd ed. Dordrecht [Netherlands]: Springer, 2009.

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13

Kitagawa, H., and Y. Shibutani. IUTAM Symposium on Mesoscopic Dynamics of Fracture Process and Materials Strength: Proceeding of the IUTAM Symposium Held in Osaka, Japan, 6-11 July 2003. Springer Netherlands, 2010.

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14

Just, Wolfram, Rainer Klages, Heinz Georg Schuster, and Christopher Jarzynski. Nonequilibrium Statistical Physics of Small Systems: Fluctuation Relations and Beyond. Wiley & Sons, Incorporated, John, 2013.

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15

Just, Wolfram, Rainer Klages, Heinz Georg Schuster, and Christopher Jarzynski. Nonequilibrium Statistical Physics of Small Systems: Fluctuation Relations and Beyond. Wiley & Sons, Incorporated, John, 2013.

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16

Just, Wolfram, Rainer Klages, Heinz Georg Schuster, and Christopher Jarzynski. Nonequilibrium Statistical Physics of Small Systems: Fluctuation Relations and Beyond. Wiley & Sons, Limited, John, 2013.

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17

Just, Wolfram, Rainer Klages, Heinz Georg Schuster, and Christopher Jarzynski. Nonequilibrium Statistical Physics of Small Systems: Fluctuation Relations and Beyond. Wiley & Sons, Incorporated, John, 2013.

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18

Semiclassical Approach To Mesoscopic Systems Classical Trajectory Correlations And Wave Interference. Springer, 2012.

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19

(Editor), Hiroshi Kitagawa, Tomoyasu Jr Aihara (Editor), and Yoshiyuki Kawazoe (Editor), eds. Mesoscopic Dynamics of Fracture: Computational Materials Design (Advances in Materials Research). Springer, 1998.

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20

(Editor), H. Kitagawa, and Y. Shibutani (Editor), eds. IUTAM Symposium on Mesoscopic Dynamics of Fracture Process and Materials Strength: Volume in celebration of Professor Kitagawa's retirement (Solid Mechanics and Its Applications). Springer, 2004.

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21

(Editor), D. Reguera, G. Platero (Editor), L. L. Bonilla (Editor), and J. M. Rubi (Editor), eds. Statistical and Dynamical Aspects of Mesoscopic Systems: Proceedings of the XVI Sitges Conference on Statistical Mechanics Held at Sitges, Barcelona, Spain, 7-11 June 1999 (Lecture Notes in Physics). Springer, 2000.

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22

(Editor), B. Ruggiero, P. Delsing (Editor), C. Granata (Editor), Y. Pashkin (Editor), and P. Silvestrini (Editor), eds. Quantum Computation in Solid State Systems. Springer, 2005.

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23

Ruggiero, Berardo, Per Delsing, Carmine Granata, Yuri A. Pashkin, and P. Silvestrini. Quantum Computing in Solid State Systems. Springer London, Limited, 2006.

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24

Mesoscopic Modeling of DNA under the influence of mechanical and thermal forces. España: Prensas de la Universidad de Zaragoza, 2016.

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25

Jauho, Antti-Pekka, and Hartmut Haug. Quantum Kinetics in Transport and Optics of Semiconductors (Springer Series in Solid-State Sciences). Springer, 2004.

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26

Jauho, Antti-Pekka, and Hartmut Haug. Quantum Kinetics in Transport and Optics of Semiconductors. Springer London, Limited, 2007.

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27

Tribology on the Small Scale: A Bottom Up Approach to Friction, Lubrication, and Wear (Mesoscopic Physics and Nanotechnology). Oxford University Press, USA, 2008.

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28

Asai, H. Theoretical Study of THz Emission from HTS Cuprate. Edited by A. V. Narlikar. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780198738169.013.9.

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This article examines the THz emission from high-temperature superconducting (HTS) cuprates in the mesoscopic state using the intrinsic Josephson junction model. Cuprate superconductors are high-temperature superconductors that exhibit exotic electromagnetic properties. One of the remarkable features of HTS cuprates is high anisotropy due to their layered structures. Almost all HTS cuprates are composed of stacks of CuO2 layers and blocking layers which supply charge carriers to the CuO2 layers. The crystal structures of the HTS cuprates naturally form Josephson junctions known as intrinsic Josephson junctions (IJJs). This article first describes the basic theory of IJJ and the mechanism of THz emission before discussing the effect of temperature inhomogeneity on the emission properties. It then introduces a novel IJJ-based THz emitter that utilizes laser heating. Theoretical results show that the THz emission is caused by the strong excitation of transverse Josephson plasma waves in IJJs under a direct current bias.
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