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Organic Radical Polymers: New Avenues in Organic Electronics 1st ed. 2017 [Pehme köide]

  • Formaat: Paperback / softback, 80 pages, kõrgus x laius: 235x155 mm, kaal: 1533 g, 42 Illustrations, color; IX, 80 p. 42 illus. in color., 1 Paperback / softback
  • Sari: SpringerBriefs in Materials
  • Ilmumisaeg: 30-Jun-2017
  • Kirjastus: Springer International Publishing AG
  • ISBN-10: 3319585738
  • ISBN-13: 9783319585734
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  • Formaat: Paperback / softback, 80 pages, kõrgus x laius: 235x155 mm, kaal: 1533 g, 42 Illustrations, color; IX, 80 p. 42 illus. in color., 1 Paperback / softback
  • Sari: SpringerBriefs in Materials
  • Ilmumisaeg: 30-Jun-2017
  • Kirjastus: Springer International Publishing AG
  • ISBN-10: 3319585738
  • ISBN-13: 9783319585734
This book provides a detailed introduction to organic radical polymers and open-shell macromolecules. Functional macromolecules have led to marked increases in a wide range of technologies, and one of the fastest growing of these fields is that of organic electronic materials and devices. To date, synthetic and organic electronic device efforts have focused almost exclusively on closed-shell polymers despite the promise of open-shell macromolecules in myriad applications.This text represents the first comprehensive review of the design, synthesis, characterization, and device applications of open-shell polymers. In particular, it will summarize the impressive synthetic and device performance efforts that have been achieved with respect to energy storage, energy conversion, magnetic, and spintronic applications. By combining comprehensive reviews with a wealth of informative figures, the text provides the reader with a complete "molecules-to-modules" understanding of the state of

the art in open-shell macromolecules. Moreover, the monograph highlights future directions for open-shell polymers in order to allow the reader to be part of the community that continues to build the field. In this way, the reader will gain a rapid understanding of the field and will have a clear pathway to utilize these materials in next-generation applications.

Chapter 1. An Introduction to Radical Polymers.- Chapter 2. Syntheses of Radical Polymers.- Chapter 3. Applications of Radical Polymers in Electrolyte-supported Devices.- Chapter 4. Applications of Radical Polymers in Solid-state Devices.- Chapter 5. Conclusions and Future Outlook.
Acknowledgements v
About the Authors ix
1 An Introduction to Radical Polymers
1(16)
1.1 Organic Materials in Modern Life
1(4)
1.2 Organic Radicals
5(1)
1.3 The Chemistry of Reactive Radicals
5(2)
1.4 Opportunities for Stable Radicals
7(2)
1.5 Radicals as Basic Units of Polymeric Structures
9(3)
1.5.1 Radical Polymers
10(1)
1.5.2 Polyradicals
10(2)
1.6 Physical Properties of Radical Polymers
12(1)
1.7
Chapter Summary
12(5)
References
13(4)
2 Syntheses of Radical Polymers
17(20)
2.1 Expectations and Synthetic Limitations: Optimizing the Design of Radical Polymers
17(1)
2.2 Different Strategies in the Syntheses of Radical Polymers
17(12)
2.3 Conjugated Radical Polymers
29(1)
2.4 Polyradicals
30(3)
2.5
Chapter Summary
33(4)
References
33(4)
3 Applications of Radical Polymers in Electrolyte-Supported Devices
37(20)
3.1 Electrolyte-Supported Redox Reactions of Radicals: Opportunities and Applications
37(1)
3.2 Radical Polymers in Energy Storage
38(2)
3.3 Radical Polymers as Battery Electrodes
40(2)
3.4 Controlling Capacity Fading in ORBs
42(2)
3.5 Aqueous Electrolyte Supported ORBs
44(1)
3.6 Radical Polymers in Flow Batteries
45(3)
3.7 Functional Carbon Composites of Radical Polymers
48(3)
3.8 Fully Organic Rechargeable Radical Polymer Batteries
51(1)
3.9
Chapter Summary
52(5)
References
53(4)
4 Applications of Radical Polymers in Solid-State Devices
57(16)
4.1 Application of Radical Polymers to Solid-State Devices
57(1)
4.2 Charge Storage Inspired Organic Electronics
58(4)
4.3 Charge Transport in Radical Polymers
62(6)
4.3.1 Initial Observations and Related Opportunities
62(2)
4.3.2 Chemistry and Conductivity! Doping of Radical Polymers
64(4)
4.4 Radical Polymers in Other Avenues of Organic Electronics
68(2)
4.5
Chapter Summary
70(3)
References
70(3)
5 Conclusions and Future Outlook
73(4)
5.1 A Quiet Past, an Exciting Present, and a Revolutionary Future
73(1)
5.2 The Future of Radical Polymers
74(3)
Index 77
Sanjoy Mukherjee is currently a postdoctoral research associate working with Prof. Bryan W. Boudouris in the Charles D. Davidson School of Chemical Engineering at Purdue University. Sanjoy earned his undergraduate and graduate chemistry degrees at the University of Calcutta and the Indian Institute of Science respectively. Sanjoy has also worked at the Institüt für Anorganische Chemie, Universität Würzburg, Germany as a DAAD sponsored visiting fellow during his doctoral studies. His current research interests focuses on the structure-property relationships, optical properties, and charge transport mechanisms in radical polymers.

Bryan W. Boudouris is the Robert and Sally Weist Associate Professor of Chemical Engineering and an Associate Professor of Chemistry (by courtesy) in the Charles D. Davidson School of Chemical Engineering at Purdue University. Professor Boudouris earned undergraduate and graduate chemical engineering degrees at the University of Illinois at Urbana-Champaign and the University of Minnesota, respectively.  After the completion of his doctoral studies, he held a joint post-doctoral researcher position at the University of California, Berkeley and Lawrence Berkeley National Laboratory. Professor Boudouris started his independent academic career at Purdue University in August 2011, and the work of his group focuses on the synthesis, nanostructural characterization, and implementation of functional macromolecules for advanced energy, water, and security applications.