Superkondensator (German Wikipedia)

Analysis of information sources in references of the Wikipedia article "Superkondensator" in German language version.

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cleantechnica.com

  • CleanTechnica, N. Brown, Cheaper Ultracapacitors for Electric Vehicles cleantechnica.com

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  • John R. Miller, R. A. Outlaw, B. C. Holloway: Graphene Double-Layer Capacitor with ac Line-Filtering Performance. In: Science. Band 329, Nr. 5999, 2010, S. 1637–1639, doi:10.1126/science.1194372.
  • Chenguang Liu, Zhenning Yu, Bor Z. Jang, Aruna Zhamu, Bor Z. Jang: Graphene-Based Supercapacitor with an Ultrahigh Energy Density. In: Nano Letters. 10. Jahrgang, Nr. 12. American Chemical Society, 2010, S. 4863–4868, doi:10.1021/nl102661q.
  • R. Signorelli, D. C. Ku, J. G. Kassakian, J. E. Schindall: Electrochemical Double-Layer Capacitors Using Carbon Nanotube Electrode Structures. In: Proceedings of the IEEE. Band 97, Nr. 11, November 2009, S. 1837–1847, doi:10.1109/JPROC.2009.2030240 (Volltext [abgerufen am 29. Januar 2013]).
  • B. Zhang, J. Liang, C. L. Xu, B. Q. Wei, D. B. Ruan, D. H. Wu: Electric double-layer capacitors using carbon nanotube electrodes and organic electrolyte. In: Materials Letters. Band 51, Nr. 6, Dezember 2001, S. 539–542, doi:10.1016/S0167-577X(01)00352-4.
  • Qiao-Ling Chen, Kuan-Hong Xue, Wei Shen, Fei-Fei Tao, Shou-Yin Yin, Wen Xu: Fabrication and electrochemical properties of carbon nanotube array electrode for supercapacitors. In: Electrochimica Acta. Band 49, Nr. 24, 30. September 2004, S. 4157–4161, doi:10.1016/j.electacta.2004.04.010.
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  • Jian Li, Xiaoqian Cheng, Alexey Shashurin, Michael Keidar: Review of Electrochemical Capacitors Based on Carbon Nanotubes and Graphene. In Graphene, 2012, 1, 1–13, doi:10.4236/graphene.2012.11001
  • J. P. Zheng, P. J. Cygan, T. R. Jow: Hydrous Ruthenium Oxide as an Electrode Material for Electrochemical Capacitors. In: Journal of The Electrochemical Society. Band 142, Nr. 8, 8. Januar 1995, S. 2699–2703, doi:10.1149/1.2050077.
  • J. P. Zheng, T. R. Jow: High energy and high power density electrochemical capacitors. In Journal of Power Sources. Vol 62, Nr. 2, October 1996, S. 155–159, doi:10.1016/S0378-7753(96)02424-X
  • E. Frackowiak, V. Khomenko, K. Jurewicz, K. Lota, F. Béguin: Supercapacitors based on conducting polymers/nanotubes composites. In: Journal of Power Sources. Band 153, Nr. 2, 28. Februar 2006, S. 413–418, doi:10.1016/j.jpowsour.2005.05.030.
  • V. Ruiz, C. Blanco, E. Raymundo-Piñero, V. Khomenko, F. Béguin: Effects of thermal treatment of activated carbon on the electrochemical behaviour in supercapacitors. In: Electrochimica Acta. Band 52, Nr. 15, 20. April 2007, S. 4969–4973, doi:10.1016/j.electacta.2007.01.071.
  • L. Demarconnay, E. Raymundo-Piñero, F. Béguin: A symmetric carbon/carbon supercapacitor operating at 1.6 V by using a neutral aqueous solution. In: Electrochemistry Communications. Band 12, Nr. 10, 1. Oktober 2010, S. 1275–1278, doi:10.1016/j.elecom.2010.06.036.
  • Aneeya K. Samantara, Satyajit Ratha: Materials Development for Active/Passive Components of a Supercapacitor. In: SpringerBriefs in Materials. 2018, doi:10.1007/978-981-10-7263-5.
  • Lars H. Hess, Ladyna Wittscher, Andrea Balducci: The impact of carbonate solvents on the self-discharge, thermal stability and performance retention of high voltage electrochemical double layer capacitors. In: Physical Chemistry Chemical Physics. Band 21, Nr. 18, 2019, S. 9089–9097, doi:10.1039/C9CP00483A.
  • Xiaowei Yang, Chi Cheng, Yufei Wang, Ling Qiu, Dan Li: Liquid-Mediated Dense Integration of Graphene Materials for Compact Capacitive Energy Storage. In: Science. Band 341, Nr. 6145, 8. Februar 2013, S. 534–537, doi:10.1126/science.1239089, PMID 23908233.
  • Yanwu Zhu u. a.: Carbon-Based Supercapacitors Produced by Activation of Graphene. In: Science. Band 332, Nr. 6037, 24. Juni 2011, S. 1537–1541, doi:10.1126/science.1200770, PMID 21566159.
  • TaeYoung Kim, Gyujin Jung, Seonmi Yoo, Kwang S. Suh, Rodney S. Ruoff, Activated Graphene-Based Carbons as Supercapacitor Electrodes with Macro- and Mesopores doi:10.1021/nn402077v
  • Long Zhang u. a.: Porous 3D graphene-based bulk materials with exceptional high surface area and excellent conductivity for supercapacitors. In: Scientific Reports. Band 3, 11. März 2013, doi:10.1038/srep01408, PMID 23474952.
  • K. Hata u. a.: High-power supercapacitor electrodes from single-walled carbon nanohorn/nanotube composite. In ACS Nano, 5, Nr. 2, 2011, pp. 811–819, doi:10.1021/nn1017457
  • Yan Kou, Yanhong Xu, Zhaoqi Guo, Donglin Jiang: Supercapacitive Energy Storage and Electric Power Supply Using an Aza-Fused π-Conjugated Microporous Framework. In Angewandte Chemie 123, 2011, S. 8912–8916, doi:10.1002/ange.201103493
  • Zhe Tang, Chun-hua Tang, Hao Gong: A High Energy Density Asymmetric Supercapacitor from Nano-architectured Ni(OH)2/Carbon Nanotube Electrodes. In: Advanced Functional Materials. Band 22, Nr. 6, 2012, S. 1272–1278, doi:10.1002/adfm.201102796.
  • Liqiang Mai u. a.: Fast Ionic Diffusion-Enabled Nanoflake Electrode by Spontaneous Electrochemical Pre-Intercalation for High-Performance Supercapacitor. In: Scientific Reports. Band 3, 24. April 2013, doi:10.1038/srep01718, PMID 23611904.
  • Zhong-Shuai Wu, Xinliang Feng, Hui-Ming Cheng: Recent advances in graphene-based planar micro-supercapacitors for on-chip energy storage. In: National Science Review. 7. Dezember 2013, S. nwt003, doi:10.1093/nsr/nwt003.
  • A. Raut, C. Parker, J. Glass: A method to obtain a Ragone plot for evaluation of carbon nanotube supercapacitor electrodes. In: Journal of Materials Research Vol. 25, No. 8, Nr. 2010, doi:10.1557/JMR.2010.0192

ebscohost.com

connection.ebscohost.com

ecsdl.org

jes.ecsdl.org

  • B. E. Conway: Transition from ‘Supercapacitor’ to ‘Battery’ Behavior in Electrochemical Energy Storage. In: Journal of The Electrochemical Society. Band 138, Nr. 6, Mai 1991, S. 1539–1548, doi:10.1149/1.2085829 (ecsdl.org [PDF]).

electrochem.org

  • Patrice Simon, A. F. Burke: Nanostructured carbons: double-layer capacitance and more. In: The electrochemical society interface. Band 17, Nr. 1, 2008, S. 38 (electrochem.org [PDF; 633 kB; abgerufen am 1. Februar 2015]).
  • M. Morita, M. Araki, N. Yoshimoto: Pseudo-capacitance of Activated Carbon Fiber Coated by Polythiophenes. In 2004 Joint International Meeting, E1 – Electrochemical Capacitor and Hybrid Power Sources. Electrochemical Society, 3.–8. Okt. 2004 (Abs# 676, PDF)
  • K. Naoi, P. Simon: New Materials and New Configurations for Advanced Electrochemical Capacitors. ECS, Vol. 17, No. 1, Spring 2008, PDF
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electrochemsci.org

  • M. Jayalakshmi, K. Balasubramanian: Simple Capacitors to Supercapacitors – An Overview. (PDF; 901 kB) In: Int. J. Electrochem. Sci., 3, 2008, S. 1196–1217
  • Francesco Lufrano, Pietro Staiti: A bibliometric analysis of the international literature in supercapacitors. In: Int. J. Electrochem. Sci. Band 4, 2009, S. 173–186 (electrochemsci.org [PDF]).

elna.co.jp

emtel.group

  • How Emtel’s Supercapacitor Batteries Outperform Traditional Batteries, 08. Aug 2024, [1]

energy.gov

espacenet.com

worldwide.espacenet.com

  • Patent US2800616: Low voltage electrolytic capacitor. Veröffentlicht am 23. Juli 1957, Erfinder: H. I. Becker.
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eurekalert.org

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forschungsinformationssystem.de

gizmag.com

google.de

books.google.de

greencarcongress.com

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grueneautos.com

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heise.de

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ewh.ieee.org

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ipme.ru

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  • R. Signorelli, D. C. Ku, J. G. Kassakian, J. E. Schindall: Electrochemical Double-Layer Capacitors Using Carbon Nanotube Electrode Structures. In: Proceedings of the IEEE. Band 97, Nr. 11, November 2009, S. 1837–1847, doi:10.1109/JPROC.2009.2030240 (Volltext [abgerufen am 29. Januar 2013]).

mitre.org

  • Marin S. Halper, James C. Ellenbogen: Supercapacitors: A Brief Overview. (PDF) In: MITRE Nanosystems Group. März 2006, archiviert vom Original (nicht mehr online verfügbar) am 20. März 2013; abgerufen am 7. Dezember 2015 (englisch).  Info: Der Archivlink wurde automatisch eingesetzt und noch nicht geprüft. Bitte prüfe Original- und Archivlink gemäß Anleitung und entferne dann diesen Hinweis.@1@2Vorlage:Webachiv/IABot/www.mitre.org

motorsport-total.com

murata.com

nasa.gov

naca.larc.nasa.gov

  • S. Arepalli, H. Fireman, C. Huffman, P. Moloney, P. Nikolaev, L. Yowell, C.D. Higgins, K. Kim, P.A. Kohl, S.P. Turano, and W.J. Ready: Carbon-Nanotube-Based Electrochemical Double-Layer Capacitor Technologies for Spaceflight Applications. In: JOM. 2005, S. 24–31 (naca.larc.nasa.gov (Memento des Originals vom 20. Dezember 2015 im Internet Archive) [abgerufen am 7. Dezember 2015]).  Info: Der Archivlink wurde automatisch eingesetzt und noch nicht geprüft. Bitte prüfe Original- und Archivlink gemäß Anleitung und entferne dann diesen Hinweis.@1@2Vorlage:Webachiv/IABot/naca.larc.nasa.gov

nichicon.co.jp

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  • A.C. Dillon: Carbon Nanotubes for Photoconversion and Electrical Energy Storage. In: Chem. Rev. 110. Jahrgang, Nr. 11, 2010, S. 6856–6872, doi:10.1021/cr9003314, PMID 20839769.
  • Xiaowei Yang, Chi Cheng, Yufei Wang, Ling Qiu, Dan Li: Liquid-Mediated Dense Integration of Graphene Materials for Compact Capacitive Energy Storage. In: Science. Band 341, Nr. 6145, 8. Februar 2013, S. 534–537, doi:10.1126/science.1239089, PMID 23908233.
  • Yanwu Zhu u. a.: Carbon-Based Supercapacitors Produced by Activation of Graphene. In: Science. Band 332, Nr. 6037, 24. Juni 2011, S. 1537–1541, doi:10.1126/science.1200770, PMID 21566159.
  • Long Zhang u. a.: Porous 3D graphene-based bulk materials with exceptional high surface area and excellent conductivity for supercapacitors. In: Scientific Reports. Band 3, 11. März 2013, doi:10.1038/srep01408, PMID 23474952.
  • Liqiang Mai u. a.: Fast Ionic Diffusion-Enabled Nanoflake Electrode by Spontaneous Electrochemical Pre-Intercalation for High-Performance Supercapacitor. In: Scientific Reports. Band 3, 24. April 2013, doi:10.1038/srep01718, PMID 23611904.

ningpan.net

  • CHUNSHENG DU, NING PAN, Carbon Nanotube-Based Supercapacitors, NANOTECHNOLOGY LAW &BUSINESS, MARCH 2007, PDF

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  • J. M. Miller (Maxwell Technologies Inc.): Energy Storage Technology, Markets and Applications, Ultracapacitor’s in Combination with Lithium-ion. IEEE Rock River Valley, IL, Section, 26. April 2007 (PDF), (abgerufen am 5. Januar 2014)

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  • E. Frackowiak, F. Beguin: Carbon Materials For The Electrochemical Storage Of Energy In Capacitors. In: CARBON. 39, 2001, S. 937–950 (PDF) und E. Frackowiak, K. Jurewicz, S. Delpeux, F. Béguin: Nanotubular Materials For Supercapacitors. In Journal of Power Sources. Volumes 97–98, Juli 2001, S. 822–825, doi:10.1016/S0378-7753(01)00736-4

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  • Zbigniew Stojek: The Electrical Double Layer and Its Structure. In: Fritz Scholz (Hrsg.): Electroanalytical Methods: Guide to Experiments and Applications. Springer, Berlin/Heidelberg 2010, ISBN 978-3-642-02914-1, S. 3–10 (online [abgerufen am 5. Januar 2014]).

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  • Patentanmeldung WO2003003466: Quantum supercapacitor. Erfinder: Alexander Milhailovich.

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yunasko.com

zeit.de

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