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Auswahl der wissenschaftlichen Literatur zum Thema „Zn-MnO2 batteries“
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Zeitschriftenartikel zum Thema "Zn-MnO2 batteries"
Durena, Ramona, und Anzelms Zukuls. „A Short Review: Comparison of Zinc–Manganese Dioxide Batteries with Different pH Aqueous Electrolytes“. Batteries 9, Nr. 6 (05.06.2023): 311. http://dx.doi.org/10.3390/batteries9060311.
Der volle Inhalt der QuelleYadav, Gautam, Jinchao Huang, Meir Weiner, Shinju Yang, Kristen Vitale, Sanbir Rahman, Kevin Keane und Sanjoy Banerjee. „Improvements in Performance and Cost Reduction of Large-Scale Rechargeable Zinc|Manganese Dioxide Batteries and a Future Roadmap Driven through Real World Applications“. ECS Meeting Abstracts MA2022-01, Nr. 3 (07.07.2022): 452. http://dx.doi.org/10.1149/ma2022-013452mtgabs.
Der volle Inhalt der QuelleWang, Xiao, Shuanghao Zheng, Feng Zhou, Jieqiong Qin, Xiaoyu Shi, Sen Wang, Chenglin Sun, Xinhe Bao und Zhong-Shuai Wu. „Scalable fabrication of printed Zn//MnO2 planar micro-batteries with high volumetric energy density and exceptional safety“. National Science Review 7, Nr. 1 (11.06.2019): 64–72. http://dx.doi.org/10.1093/nsr/nwz070.
Der volle Inhalt der QuelleWruck, W. J., B. Reichman, K. R. Bullock und W. ‐H Kao. „Rechargeable Zn ‐ MnO2 Alkaline Batteries“. Journal of The Electrochemical Society 138, Nr. 12 (01.12.1991): 3560–67. http://dx.doi.org/10.1149/1.2085459.
Der volle Inhalt der QuelleWang, Da Hui, Sha Zhang und Ji Hong Xia. „Study on Mechanism of Desulfurization by Spent Zn-MnO2 Batteries“. Advanced Materials Research 402 (November 2011): 452–56. http://dx.doi.org/10.4028/www.scientific.net/amr.402.452.
Der volle Inhalt der QuelleKankanallu, Varun, Xiaoyin Zheng, Cheng-Hung Lin, Nicole Zmich, Mingyuan Ge und Yu-chen Karen Chen-Wiegart. „Elucidating MnO2 Reaction Mechanism By Multi-Modal Characterization in Aqueous Zn-MnO2 Batteries“. ECS Meeting Abstracts MA2022-02, Nr. 4 (09.10.2022): 401. http://dx.doi.org/10.1149/ma2022-024401mtgabs.
Der volle Inhalt der QuelleSenthilkumar, S. T., Hussain Alawadhi und Anis Allagui. „Enhancing aqueous Zn-Mn battery performance using Na+ ion conducting ceramic membrane“. Journal of Physics: Conference Series 2751, Nr. 1 (01.04.2024): 012005. http://dx.doi.org/10.1088/1742-6596/2751/1/012005.
Der volle Inhalt der QuelleCho, Jungsang, Gautam Ganapati Yadav, Meir Weiner, Jinchao Huang, Aditya Upreti, Xia Wei, Roman Yakobov et al. „Hydroxyl Conducting Hydrogels Enable Low-Maintenance Commercially Sized Rechargeable Zn–MnO2 Batteries for Use in Solar Microgrids“. Polymers 14, Nr. 3 (20.01.2022): 417. http://dx.doi.org/10.3390/polym14030417.
Der volle Inhalt der QuelleGao, Feifei, Wenchao Shi, Bowen Jiang, Zhenzhi Xia, Lei Zhang und Qinyou An. „Ni/Fe Bimetallic Ions Co-Doped Manganese Dioxide Cathode Materials for Aqueous Zinc-Ion Batteries“. Batteries 9, Nr. 1 (11.01.2023): 50. http://dx.doi.org/10.3390/batteries9010050.
Der volle Inhalt der QuelleHuang, Yalan, Wanyi He, Peng Zhang und Xihong Lu. „Nitrogen-doped MnO2 nanorods as cathodes for high-energy Zn-MnO2 batteries“. Functional Materials Letters 11, Nr. 06 (Dezember 2018): 1840006. http://dx.doi.org/10.1142/s1793604718400064.
Der volle Inhalt der QuelleDissertationen zum Thema "Zn-MnO2 batteries"
Aguilar, Ivette. „Batteries aqueuses Zn-MnO2 : études mécanistiques et pistes de développement pour des dispositifs réversibles à haute énergie“. Electronic Thesis or Diss., Sorbonne université, 2022. http://www.theses.fr/2022SORUS506.
Der volle Inhalt der QuelleLi-ion batteries are prominent in the portable electronics market due to their high energy density and long lifetime. However, their durability still needs to be improved. In this respect, there is a growing interest in aqueous batteries. For example, considerable efforts are being devoted to make alkaline Zn-MnO2 batteries rechargeable. This is proving to be a daunting task due to the complex chemistry of the Zn-MnO2 system, which, despite decades of research, is not yet fully rationalised, resulting in a delay in its practical deployment. In this work, we will re-examine these devices by analytical techniques such as transmission electron microscopy, Raman spectroscopy, quartz crystal microbalance and optical reflectometry, while considering fundamental aspects of solution chemistry. By assembling cells with different positive electrode compositions, we confirm the key role of the electrolyte and the inseparable link between its pH and the electrochemical response of the system. Furthermore, during discharge and charge, we provide experimental evidence for the formation of soluble zinc hydroxides near the cathode-electrolyte interface, responsible for the chemical precipitation of the Zn4(OH)6 SO4.xH2O phase. We also show the importance of these equilibria for the functioning of the system. Inspired by the work presented by Yamamoto in 1986, we also carried out an optimisation study that allowed us to develop cells with high gravimetric capacity and high capacity retention. The set of findings presented provide new perspectives for the development of low cost, high performance rechargeable aqueous batteries
Sitindaon, Rina Se, und 瑟琳娜. „Zn-MnO2 Nanomaterials on Nickel Foam as Cathode Electrode in Zinc Ion Batteries (ZIBs)“. Thesis, 2019. http://ndltd.ncl.edu.tw/handle/m89v3n.
Der volle Inhalt der Quelle國立中興大學
化學系所
107
This thesis discuss the MnO2 nanomaterials composited zinc ion on nickel foam as cathode electrode in Zinc Ion Battery. The materials fabricated by electrodechemical deposition from aqueouse 1 M Na2SO4 solution and 0.01 M MnSO4 solution as soure of MnO2 and ZnSO4 solution as source of zinc ion on nickel foam substrate. The electrodeposited MnO2 composite zinc (Zn-MnO2) result MnO2 gamma plane. The Zn-MnO2 electrochemical properties has been characterize by using cyclic votammetry and galvanostic charge/discharge analysis on coin cell 2032 type with potential range 1.0-1.8 V. The cyclic voltammograms shows of Zn-MnO2 is higher than pristine MnO2 as cathode on Zinc ion battery. Galvanostatic charge shows specific capacity of Zn-MnO2 ( 77.59 mAh/g) almost three times higher than pristine MnO2 (28.34 mAh/g) at current density 0.05 mA/cm2. The zinc composite improving the electrochemical activity of MnO2 conduce the specific capacity in Zinc Ion Battery. The Zn-MnO2 is a promissing cathode material for used in Zinc ion batteries.
Buchteile zum Thema "Zn-MnO2 batteries"
Huang, Yalan, Wanyi He, Peng Zhang und Xihong Lu. „Nitrogen-Doped MnO2 Nanorods as Cathodes for High-Energy Zn-MnO2 Batteries“. In Functional Materials for Next-Generation Rechargeable Batteries, 167–77. WORLD SCIENTIFIC, 2021. http://dx.doi.org/10.1142/9789811230677_0012.
Der volle Inhalt der QuelleKonferenzberichte zum Thema "Zn-MnO2 batteries"
Lambert, Timothy, Matthew Lim, Igor Kolesnichenko, David Arnot, Noah Schorr, Clayton Habing, Darrion Ricketts, Elijah Ruiz und Babu Chalamala. „Development of Zn/MnO2 Alkaline Batteries for Grid Storage.“ In Proposed for presentation at the 2020 Spring/Fall Meeting of The Materials Research Society held November 27 - December 4, 2020 in Virtual, Virtual. US DOE, 2020. http://dx.doi.org/10.2172/1831361.
Der volle Inhalt der QuelleKolesnichenko, Igor, David Arnot, Matthew Lim, Gautam Yadav, Michael Nyce, Jinchao Huang, Sanjoy Banerjee und Timothy Lambert. „Ion-Selective Polysulfone Separators for Alkaline Zn-MnO2 Batteries.“ In Proposed for presentation at the Sandia National Laboratories 14th Annual Postdoctoral Technical Showcase held December 9-10, 2020 in Virtual, Virtual, Virtual. US DOE, 2020. http://dx.doi.org/10.2172/1835221.
Der volle Inhalt der QuelleDe Angelis, Valerio, Gautam Yadav, Jinchao Huang, Alexander Couzis und Sanjoy Banerjee. „Rechargeable Zn-MnO2 batteries for utility load management and renewable integration“. In 2018 International Symposium on Power Electronics, Electrical Drives, Automation and Motion (SPEEDAM). IEEE, 2018. http://dx.doi.org/10.1109/speedam.2018.8445249.
Der volle Inhalt der QuelleCho, Jungsang, Damon Turney, Gautam Yadav, Michael Nyce, Timothy Lambert und Sanjoy Banerjee. „Optimization of Hydrogels for non-spillable Zn|MnO2 rechargeable batteries allowing for 2nd electron MnO2 cycling.“ In Proposed for presentation at the 2022 AIChE Annual Meeting November 13-18, 2022 held November 13-18, 2022 in Phoenix, AZ US. US DOE, 2022. http://dx.doi.org/10.2172/2006015.
Der volle Inhalt der QuelleCho, Jungsang, Gautam Yadav, Jinchao Huang, Kyle Nyce, Meir Weiner, Timothy Lambert und Sanjoy Banerjee. „The low-maintenance application of hydrogel electrolytes to Zn/MnO2 rechargeable batteries.“ In Proposed for presentation at the 2021 AiChE Annual Meeting held November 15-19, 2021 in Virtual, Virtual US. US DOE, 2021. http://dx.doi.org/10.2172/1897699.
Der volle Inhalt der QuelleCho, Jungsang, Damon Turney, Gautam Yadav, Michael Nyce, Timothy Lambert und Sanjoy Banerjee. „Understanding of Ion Diffusion for Non-Spillable Zn|MnO2 Rechargeable Batteries Allowing for the 2nd Electron MnO2 Cycling in Hydrogel Electrolytes.“ In Proposed for presentation at the 2022 AIChE Annual Meeting November 13-18, 2022 held November 13-18, 2022 in Phoenix, AZ US. US DOE, 2022. http://dx.doi.org/10.2172/2005870.
Der volle Inhalt der QuelleCho, Jungsang, Damon Turney, Gautam Yadav, Michael Nyve, Timothy Lambert und Sanjoy Banerjee. „Hydrogel Electrolytes Ensuring the Transportability and the 2nd Electron Reaction of Zn-MnO2 Alkaline Batteries.“ In Proposed for presentation at the 2022 DOE OE Peer Review held October 11-13, 2022 in Albuquerque, NM. US DOE, 2022. http://dx.doi.org/10.2172/2005252.
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