Literature DB >> 15669158

Battery separators.

Pankaj Arora1, Zhengming John Zhang.   

Abstract

The ideal battery separator would be infinitesimally thin, offer no resistance to ionic transport in electrolytes, provide infinite resistance to electronic conductivity for isolation of electrodes, be highly tortuous to prevent dendritic growths, and be inert to chemical reactions. Unfortunately, in the real world the ideal case does not exist. Real world separators are electronically insulating membranes whose ionic resistivity is brought to the desired range by manipulating the membranes thickness and porosity. It is clear that no single separator satisfies all the needs of battery designers, and compromises have to be made. It is ultimately the application that decides which separator is most suitable. We hope that this paper will be a useful tool and will help the battery manufacturers in selecting the most appropriate separators for their batteries and respective applications. The information provided is purely technical and does not include other very important parameters, such as cost of production, availability, and long-term stability. There has been a continued demand for thinner battery separators to increase battery power and capacity. This has been especially true for lithiumion batteries used in portable electronics. However, it is very important to ensure the continued safety of batteries, and this is where the role of the separator is greatest. Thus, it is essential to optimize all the components of battery to improve the performance while maintaining the safety of these cells. Separator manufacturers should work along with the battery manufacturers to create the next generation of batteries with increased reliability and performance, but always keeping safety in mind. This paper has attempted to present a comprehensive review of literature on separators used in various batteries. It is evident that a wide variety of separators are available and that they are critical components in batteries. In many cases, the separator is one of the major factors limiting the life and/or performance of batteries. Consequently, development of new improved separators would be very beneficial for the advanced high capacity batteries.

Entities:  

Year:  2004        PMID: 15669158     DOI: 10.1021/cr020738u

Source DB:  PubMed          Journal:  Chem Rev        ISSN: 0009-2665            Impact factor:   60.622


  67 in total

1.  Transparent lithium-ion batteries.

Authors:  Yuan Yang; Sangmoo Jeong; Liangbing Hu; Hui Wu; Seok Woo Lee; Yi Cui
Journal:  Proc Natl Acad Sci U S A       Date:  2011-07-25       Impact factor: 11.205

2.  Enhanced Conductivity via Homopolymer-Rich Pathways in Block Polymer-Blended Electrolytes.

Authors:  Melody A Morris; Seung Hyun Sung; Priyanka M Ketkar; Joseph A Dura; Ryan C Nieuwendaal; Thomas H Epps
Journal:  Macromolecules       Date:  2019       Impact factor: 5.985

3.  A safe and sustainable bacterial cellulose nanofiber separator for lithium rechargeable batteries.

Authors:  Hyeokjo Gwon; Kitae Park; Soon-Chun Chung; Ryoung-Hee Kim; Jin Kyu Kang; Sang Min Ji; Nag-Jong Kim; Sunghaeng Lee; Jun-Hwan Ku; Eun Cheol Do; Sujin Park; Minsang Kim; Woo Yong Shim; Hong Soon Rhee; Jae-Young Kim; Jieun Kim; Tae Yong Kim; Yoshitaka Yamaguchi; Ryo Iwamuro; Shunsuke Saito; Gahee Kim; In-Sun Jung; Hyokeun Park; Chanhee Lee; Seungyeon Lee; Woo Sung Jeon; Woo Dae Jang; Hyun Uk Kim; Sang Yup Lee; Dongmin Im; Seok-Gwang Doo; Sang Yoon Lee; Hyun Chul Lee; Jin Hwan Park
Journal:  Proc Natl Acad Sci U S A       Date:  2019-09-09       Impact factor: 11.205

4.  In situ transmission electron microscopy of lead dendrites and lead ions in aqueous solution.

Authors:  Edward R White; Scott B Singer; Veronica Augustyn; William A Hubbard; Matthew Mecklenburg; Bruce Dunn; Brian C Regan
Journal:  ACS Nano       Date:  2012-06-28       Impact factor: 15.881

5.  Modulating molecular and nanoparticle transport in flexible polydimethylsiloxane membranes.

Authors:  Kexin Jiao; Chase L Graham; Justin Wolff; Ratnasabapathy G Iyer; Punit Kohli
Journal:  J Memb Sci       Date:  2012-05-15       Impact factor: 8.742

6.  Stable Na Electrodeposition Enabled by Agarose-Based Water-Soluble Sodium Ion Battery Separators.

Authors:  Alazne Ojanguren; Neeru Mittal; Erlantz Lizundia; Markus Niederberger
Journal:  ACS Appl Mater Interfaces       Date:  2021-04-29       Impact factor: 10.383

7.  Reaction temperature sensing (RTS)-based control for Li-ion battery safety.

Authors:  Guangsheng Zhang; Lei Cao; Shanhai Ge; Chao-Yang Wang; Christian E Shaffer; Christopher D Rahn
Journal:  Sci Rep       Date:  2015-12-11       Impact factor: 4.379

8.  Supercapacitor operating at 200 degrees celsius.

Authors:  Raquel S Borges; Arava Leela Mohana Reddy; Marco-Tulio F Rodrigues; Hemtej Gullapalli; Kaushik Balakrishnan; Glaura G Silva; Pulickel M Ajayan
Journal:  Sci Rep       Date:  2013       Impact factor: 4.379

9.  An Evaluation of the Performance and Economics of Membranes and Separators in Single Chamber Microbial Fuel Cells Treating Domestic Wastewater.

Authors:  Beate Christgen; Keith Scott; Jan Dolfing; Ian M Head; Thomas P Curtis
Journal:  PLoS One       Date:  2015-08-25       Impact factor: 3.240

10.  In-operando high-speed tomography of lithium-ion batteries during thermal runaway.

Authors:  Donal P Finegan; Mario Scheel; James B Robinson; Bernhard Tjaden; Ian Hunt; Thomas J Mason; Jason Millichamp; Marco Di Michiel; Gregory J Offer; Gareth Hinds; Dan J L Brett; Paul R Shearing
Journal:  Nat Commun       Date:  2015-04-28       Impact factor: 14.919

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