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Books on the topic 'Electrochemical characterizations'

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1

György, Inzelt, Scholz Fritz, and SpringerLink (Online service), eds. Electrochemical Dictionary. 2nd ed. Berlin, Heidelberg: Springer Berlin Heidelberg, 2012.

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2

1936-, Varma Ravi, Selman J. R, and Electrochemical Society, eds. Techniques for characterization of electrodes and electrochemical processes. New York: Wiley, 1991.

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3

N, Kumta Prashant, and American Ceramic Society Meeting, eds. Processing and characterization of electrochemical materials and devices. Westerville, Ohio: American Ceramic Society, 2000.

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4

D, Abruña Héctor, ed. Electrochemical interfaces: Modern techniques for in-situ interface characterization. New York: VCH Pub., 1991.

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5

Lvovich, Vadim. Electrochemical impedance spectroscopy (EIS) characterization of electrorheological fluids (ERF). Norwich, N.Y.]: Knovel, 2011.

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6

Russell, Sebastian T. The synthesis, characterization, and electrochemical analysis of structured polymer electrolytes having strong ionic interactions. [New York, N.Y.?]: [publisher not identified], 2020.

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7

C, Hansen D., Isaacs H. S. 1936-, Sieradzki Karl, Electrochemical Society Corrosion Division, Electrochemical Society Electrodeposition Division, and Electrochemical Society. Physical Electrochemistry Division., eds. Scanning probe techniques for materials characterization at nanometer scale: Proceedings of the international symposium. Pennington, NJ: Electrochemical Society, 2001.

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8

Pern, F. J. Characterization of damp-heat degradation of CuInGaSe₂ solar cell components and devices by (electrochemical) impedance spectroscopy: Preprint. Golden, CO: National Renewable Energy Laboratory, 2011.

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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

ALTEC 2003 (2003 Paris, France). Analytical and diagnostic techniques for semiconductor materials, devices, and processes: Joint proceedings of symposia on: ALTEC 2003 : Analytical techniques for semiconductor materials and process characterization IV : Paris, France ; and the 202nd Meeting of the Electrochemical Society : Diagnostic techniques for semiconductor materials and devices VI : Salt Lake City, Utah. Edited by Kolbesen Bernd O, Electrochemical Society Electronics Division, Electrochemical Society Meeting, Electrochemical Society Meeting, Society of Photo-optical Instrumentation Engineers, and Symposium on Diagnostic Techniques for Semiconductor Materials and Devices (6th : 2002 : Salt Lake City, Utah). Pennington, N.J: Electrochemical Society, 2003.

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11

In Situ Characterization of Electrochemical Processes. Washington, D.C.: National Academies Press, 1987. http://dx.doi.org/10.17226/19171.

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12

Scholz, Fritz, Allen J. Bard, and György Inzelt. Electrochemical Dictionary. Springer Berlin / Heidelberg, 2016.

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13

Smith, Kevin M., Roger Guilard, and Karl Kadish. Porphyrin Handbook : Phthalocyanines: Spectroscopic and Electrochemical Characterization. Elsevier Science & Technology Books, 2012.

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14

Electrochemical Surface Modification Thin Films Functionalization And Characterization. Wiley-VCH Verlag GmbH, 2008.

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15

Processing and characterization of electrochemical materials and devices. Westerville· OH: American Ceramic Society·, 2003.

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16

Alkire, Richard C., Dieter M. Kolb, Jacek Lipkowski, and Phil N. Ross. Electrochemical Surface Modification: Thin Films, Functionalization and Characterization. Wiley & Sons, Incorporated, John, 2008.

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17

Alkire, Richard C., Dieter M. Kolb, Jacek Lipkowski, and Phil N. Ross. Electrochemical Surface Modification: Thin Films, Functionalization and Characterization. Wiley & Sons, Limited, John, 2008.

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18

Ramachandran, Kartik. Synthesis and characterization of novel materials for electrochemical devices. 1996.

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19

Abruna, Hector D. Electrochemical Interfaces: Modern Techniques for In-Situ Interface Characterization. Vch Pub, 1991.

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20

Ray, Suprakas Sinha, Onoyivwe Monday Ama, and Peter Ogbemudia Osifo. Modified Nanomaterials for Environmental Applications: Electrochemical Synthesis, Characterization, and Properties. Springer International Publishing AG, 2021.

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21

Aliofkhazraei, Mahmood, and Abdel Salam Hamdy Makhlouf. Handbook of Nanoelectrochemistry: Electrochemical Synthesis Methods, Properties, and Characterization Techniques. Springer, 2015.

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22

Aliofkhazraei, Mahmood, and Abdel Salam Hamdy Makhlouf. Handbook of Nanoelectrochemistry: Electrochemical Synthesis Methods, Properties, and Characterization Techniques. Springer, 2015.

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23

Ray, Suprakas Sinha, Onoyivwe Monday Ama, and Peter Ogbemudia Osifo. Modified Nanomaterials for Environmental Applications: Electrochemical Synthesis, Characterization, and Properties. Springer International Publishing AG, 2022.

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24

Mamantov. Characterization of Solutes in Nonaqueous Solvents: Proceedings of a Symposium on Spectroscopic and Electrochemical Characterization of Solute Specie. Springer London, Limited, 2012.

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25

Bioinspired Nanomaterials. Materials Research Forum LLC, 2021. http://dx.doi.org/10.21741/9781644901571.

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Biological synthesis employing microorganisms, fungi or plants is an alternative method to produce nanoparticles in low-cost and eco-friendly ways. The book covers the synthesis of metal nanoparticles, metal oxide nanostructures and nanocomposite materials, as well as the stability and characterization of bioinspired nanomaterials. Applications include optical and electrochemical sensors, packaging, SERS and drug delivery processes.
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26

Supercapacitor Technology. Materials Research Forum LLC, 2019. http://dx.doi.org/10.21741/9781644900499.

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Supercapacitors are most interesting in the area of rechargeable battery based energy storage because they offer an unbeatable power density, quick charge/discharge rates and prolonged lifetimes in comparison to batteries. The book covers inorganic, organic and gel-polymer electrolytes, electrodes and separators used in different types of supercapacitors; with emphasis on material synthesis, characterization, fundamental electrochemical properties and most promising applications.
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27

Mamantov. Characterization of Solutes in Nonaqueous Solvents: Proceedings Of A Symposium On Spectroscopic And Electrochemical Characterization Of Solute Specie. Springer, 2011.

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28

Zhang, Zhengwei. The electrochemical synthesis and characterization of graphite intercalation compounds and luminescent porous silicon. 1995.

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29

Design, frabrication and characterization of electrochemical devices: Nanoscale wet transistor and protein devices. Göteborg: Göteborg University, 2006.

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30

(Editor), Prashant N. Kumta, Arumugam Manthiram (Editor), S. K. Sundaram (Editor), and Yet-Ming Chiang (Editor), eds. Processing and Characterization of Electrochemical Materials and Devices (Ceramic Transactions, Vol. 109) (Ceramic Transactions). Amer Ceramic Society, 1999.

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31

The Porphyrin Handbook, Volumes 11-20, Volume 16: Phthalocyanines: Spectroscopic and Electrochemical Characterization (The Porphyrin Handbook). Academic Press, 2002.

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32

Ng, Evelyn K. Synthesis, characterization and electrochemical evaluation of lithium-manganese phosphates for cathode material in lithium ion batteries. 2006.

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33

Characterization of the Surface Film Growth During the Electrochemical Process; Part 1: Nickel - Sea Water System. Storming Media, 1999.

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34

(Editor), Karl Kadish, Roger Guilard (Editor), and Kevin M. Smith (Editor), eds. The Porphyrin Handbook, Volumes 11-20, Volume 16: Phthalocyanines: Spectroscopic and Electrochemical Characterization (The Porphyrin Handbook). Academic Press, 2002.

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35

Mischler, S., and Igual A. Munoz. Inter-Laboratory Study on Electrochemical Methods for the Characterization of Cocrmo Biomedical Alloys in Simulated Body Fluids. Taylor & Francis Group, 2020.

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36

Mischler, S., and Igual A. Munoz. Inter-Laboratory Study on Electrochemical Methods for the Characterization of Cocrmo Biomedical Alloys in Simulated Body Fluids. Taylor & Francis Group, 2020.

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37

Mischler, S., and Igual A. Munoz. Inter-Laboratory Study on Electrochemical Methods for the Characterization of Cocrmo Biomedical Alloys in Simulated Body Fluids. Taylor & Francis Group, 2020.

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38

Inter-Laboratory Study on Electrochemical Methods for the Characterization of Cocrmo Biomedical Alloys in Simulated Body Fluids. Taylor & Francis Group, 2010.

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39

Mischler, S., and Igual A. Munoz. Inter-Laboratory Study on Electrochemical Methods for the Characterization of Cocrmo Biomedical Alloys in Simulated Body Fluids. Taylor & Francis Group, 2020.

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40

Mischler, S. European Federation of Corrosion: Inter-Laboratory Study on Electrochemical Methods for the Characterization of Cocrmo Biomedical Alloys In Simulated Body Fluids. Taylor & Francis Group, 2011.

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41

Braun, Artur. Development and Characterization of Glassy Carbon Electrodes for a Bipolar Electrochemical Double Layer Capacitor: Dissertation Artur Braun ETH Z�rich 1999. Independently Published, 1999.

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42

ALTECH 95: Analytical techniques for semiconductor materials and process characterization II : Proceedings of the Satellite Symposium to ESSDERC 95, The ... (Proceedings / The Electrochemical Society). Electrochemical Society, 1995.

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43

Gauw, Renee D. Reactions and interactions of drinking water treatment by-products: Characterization of the electrochemical formation of inorganic by-products of the electrolysis of salt brine. 1999.

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44

Davis, Fred J., ed. Polymer Chemistry. Oxford University Press, 2004. http://dx.doi.org/10.1093/oso/9780198503095.001.0001.

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Polymer Chemistry: A Practical Approach in Chemistry has been designed for both chemists working in and new to the area of polymer synthesis. It contains detailed instructions for preparation of a wide-range of polymers by a wide variety of different techniques, and describes how this synthetic methodology can be applied to the development of new materials. It includes details of well-established techniques, e.g. chain-growth or step-growth processes together with more up-to-date examples using methods such as atom-transfer radical polymerization. Less well-known procedures are also included, e.g. electrochemical synthesis of conducting polymers and the preparation of liquid crystalline elastomers with highly ordered structures. Other topics covered include general polymerization methodology, controlled/"living" polymerization methods, the formation of cyclic oligomers during step-growth polymerization, the synthesis of conducting polymers based on heterocyclic compounds, dendrimers, the preparation of imprinted polymers and liquid crystalline polymers. The main bulk of the text is preceded by an introductory chapter detailing some of the techniques available to the scientist for the characterization of polymers, both in terms of their chemical composition and in terms of their properties as materials. The book is intended not only for the specialist in polymer chemistry, but also for the organic chemist with little experience who requires a practical introduction to the field.
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45

Narlikar, A. V., ed. The Oxford Handbook of Small Superconductors. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780198738169.001.0001.

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This handbook examines cutting-edge developments in research and applications of small or mesoscopic superconductors, offering a glimpse of what might emerge as a giga world of nano superconductors. Contributors, who are eminent frontrunners in the field, share their insights on the current status and great promise of small superconductors in the theoretical, experimental, and technological spheres. They discuss the novel and intriguing features and theoretical underpinnings of the phenomenon of mesoscopic superconductivity, the latest fabrication methods and characterization tools, and the opportunities and challenges associated with technological advances. The book is organized into three parts. Part I deals with developments in basic research of small superconductors, including local-scale spectroscopic studies of vortex organization in such materials, Andreev reflection and related studies in low-dimensional superconducting systems, and research on surface and interface superconductivity. Part II covers the materials aspects of small superconductors, including mesoscopic effects in superconductor–ferromagnet hybrids, micromagnetic measurements on electrochemically grown mesoscopic superconductors, and magnetic flux avalanches in superconducting films with mesoscopic artificial patterns. Part III reviews the current progress in the device technology of small superconductors, focusing on superconducting spintronics and devices, barriers in Josephson junctions, hybrid superconducting devices based on quantum wires, superconducting nanodevices, superconducting quantum bits of information, and the use of nanoSQUIDs in the investigation of small magnetic systems.
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