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Books on the topic 'Electrochemical deposition'

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1

Paunovic, Milan, and Mordechay Schlesinger. Fundamentals of Electrochemical Deposition. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2005. http://dx.doi.org/10.1002/0470009403.

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2

Mordechay, Schlesinger, ed. Fundamentals of electrochemical deposition. 2nd ed. Hoboken, N.J: Wiley, 2006.

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3

Paunovic, Milan. Fundamentals of Electrochemical Deposition. New York: John Wiley & Sons, Ltd., 2006.

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4

Mordechay, Schlesinger, and Electrochemical Society, eds. Fundamentals of electrochemical deposition. New York: Wiley, 1998.

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5

Hovestad, Arjan. Electrochemical deposition of metal matrix composites. Eindhoven: Eindhoven University, 1997.

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6

Symposium on Fundamental Aspects of Electrochemical Deposition and Dissolution Including Modeling (1997 Paris, France). Proceedings of the Symposium on Electrochemical Deposition and Dissolution Including Modeling. Edited by Paunovic Milan and Electrochemical Society Electrodeposition Division. Pennington, New Jersey: Electrochemical Society, 1998.

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7

John, Matlosz Michael, Electrochemical Society Electrodeposition Division, and Symposium on Fundamental Aspects of Electrochemical Deposition and Dissolution (1999 : Honolulu, Hawaii), eds. Fundamental aspects of electrochemical deposition and dissolution: Proceedings of the International Symposium. Pennington, N.J: Electrochemical Society, 2000.

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8

Georgi, Staikov, and Lorenz W. J, eds. Electrochemical phase formation and growth: An introduction to the initial stages of metal deposition. Weinheim: VCH, 1996.

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9

Eroglu, Damla. Modeling and Characterization of Rate Phenomena in Complex Electrochemical Systems: Sodium-Metal Chloride Batteries and Ni/SiC Co-Deposition. [New York, N.Y.?]: [publisher not identified], 2013.

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10

S, Cale Timothy, Pintchovski Fabio S, Blewer R. S, and University of California, Berkeley. Continuing Education in Engineering., eds. Advanced metallization for ULSI applications, 1992: Proceedings of the conference held October 20-22, 1992, in Tempe, Arizona. Pittsburgh, Pa: Materials Research Society., 1993.

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11

P, Favreau David, Shacham-Diamand Yosi, Horiike Yasuhiro, and University of California, Berkeley. Continuing Education in Engineering., eds. Advanced metallization for ULSI applications in 1993: Proceedings of the conference held October 5-7, 1993, San Diego, California, U.S.A., and October 26-27, 1993, Tokyo, Japan sponsored by Continuing Education in Engineering, University Extension, University of California, Berkeley, U.S.A. Pittsburgh, PA: Materials Research Society, 1994.

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12

Symposium on Interconnect and Contact Metallization (1997 Paris, France). Proceedings of the Symposium on Interconnect and Contact Metallization. Edited by Rathore Harzara S, Electrochemical Society. Dielectric Science and Technology Division., Electrochemical Society Electronics Division, and Electrochemical Society Electrodeposition Division. Pennington, NJ: Electrochemical Society, 1998.

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13

Fundamentals of Electrochemical Deposition. Wiley & Sons, Incorporated, John, 2006.

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14

Fundamentals of Electrochemical Deposition. Wiley & Sons Canada, Limited, John, 2006.

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15

Alexieva, Gergana, ed. Electrochemical Deposition: Properties and Applications. MDPI, 2024. http://dx.doi.org/10.3390/books978-3-7258-0194-7.

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16

Vincent Edward Johannes Van Dieten. Electrochemical Vapour Deposition of Sofc Interconnection Materials. Delft Univ Pr, 1994.

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17

Kois, Julia. Electrochemical deposition of CuInSe₂ thin films for photovoltaic applications. 2006.

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18

Paunovic, M. Fundamental Aspects of Electrochemical Deposition & Dissolution Including Modeling (Proceedings). Electrochemical Society, 1998.

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19

Besmann, T. M. Chemical Vapor Deposition: Thirteenth International Symposium (Proceedings / The Electrochemical Society). Electrochemical Society, 1996.

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20

Jensen, Muriel. The 12th International Conference on Chemical Vapor Deposition (Proceedings / The Electrochemical Society). Electrochemical Society, 1993.

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21

(Editor), Panayotis C. Andricacos, Electrochemical Society. Dielectric Science and Technology Division (Corporate Author), and Electrochemical Society Electronics Division (Corporate Author), eds. Electrochemical Processing in Ulsi Fabrication & Semiconductor/Metal Deposition II: Proceedings of the International Symposium (Proceedings (Electrochemical Society), V. 99-9.). Electrochemical Society, 1999.

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22

Staikov, Georgi T., Evgeni B. Budevski, and Wolfgang J. Lorenz. Electrochemical Phase Formation and Growth: An Introduction to the Initial Stages of Metal Deposition. Wiley & Sons, Incorporated, John, 2008.

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23

Staikov, Georgi T., Evgeni B. Budevski, and Wolfgang J. Lorenz. Electrochemical Phase Formation and Growth: An Introduction to the Initial Stages of Metal Deposition. Wiley & Sons, Limited, John, 2007.

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24

(Editor), Mark D. Allendorf, and Claude Bernard (Editor), eds. Chemical Vapor Deposition: Proceedings of the Fourteenth International Conference and Eurocvd-11 (Proceedings / Electrochemical Society). Electrochemical Society, 1997.

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25

(Editor), T. S. Cale, and F. S. Pintchovski (Editor), eds. Advanced Metallization for Ulsi Applications 1992 (Mrs Conference Proceedings Series, 9). Materials Research Society, 1999.

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26

(Editor), Yosi Shacham-Diamand, Yasuhiro Horiike (Editor), David P. Favreau (Editor), and Berkeley Continuing Education in engineering University of California (Corporate Author), eds. Advanced Metallization for Ulsi Applications in 1993: Proceedings of the Conference Held October 5-7, 1993, San Diego, California, U.S.A., and (Materials Research Society Conference Proceedings). Materials Research Society, 1994.

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27

Kyotani, T., and H. Orikasa. Templated carbon nanotubes and the use of their cavities for nanomaterial synthesis. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533060.013.11.

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Abstract:
This article focuses on templated carbon nanotubes (CNTs) and how their cavities can be used for the synthesis of nanomaterials. In particular, it demonstrates how effectively the CNTs can be functionalized by the template carbonization technique. The article first describes the method for synthesizing CNTs and carbon nano-test-tubes (CNTTs). It then considers the controlled filling of magnetic materials into CNTTs, taking into account the electrochemical deposition of Ni-Fe alloy and the magnetic properties of NiFe-filled CNTTs. It also examines the synthesis of water-dispersible and magnetically responsive CNTTs, with emphasis on water dispersibility and the effect of magnetic interaction. Finally, it shows how the cavities of templated CNTs can be utilized as a reaction field for the hydrothermal synthesis of one-dimensional nanomaterials.
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