Solid State Ionics in the news
13 March 2017
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Tribute to Michel Armand: from Rocking Chair - Li-ion to Solid-State Lithium Batteries
Alain Mauger
Dec 11, 2019; 167:070507-70507
Batteries and Energy Storage -
Editors' Choice--Washing of Nickel-Rich Cathode Materials for Lithium-Ion Batteries: Towards a Mechanistic Understanding
Daniel Pritzl
Dec 3, 2019; 166:A4056-A4066
Batteries and Energy Storage -
WS2/Graphene Composite as Cathode for Rechargeable Aluminum-Dual Ion Battery
M. Latha
Nov 18, 2019; 167:070501-70501
Batteries and Energy Storage -
Editors' Choice--Capacity Fading Mechanisms of NCM-811 Cathodes in Lithium-Ion Batteries Studied by X-ray Diffraction and Other Diagnostics
Franziska Friedrich
Nov 14, 2019; 166:A3760-A3774
Batteries and Energy Storage -
Alternative Electrolytes for Li-Ion Batteries Using Glutaronitrile and 2-methylglutaronitrile with Lithium Bis(trifluoromethanesulfonyl) Imide
Douaa Farhat
Oct 15, 2019; 166:A3487-A3495
Batteries and Energy Storage -
Review and Performance Comparison of Mechanical-Chemical Degradation Models for Lithium-Ion Batteries
Jorn M. Reniers
Sep 19, 2019; 166:A3189-A3200
Batteries and Energy Storage -
News: Solid State Ionics award for the best paper published in Solid State Ionics in 2017 and in 2018.
The best papers were chosen by a jury formed by the Editors of the journal and it consists of a certificate and 3,000USD.
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A Wide Range of Testing Results on an Excellent Lithium-Ion Cell Chemistry to be used as Benchmarks for New Battery Technologies
Jessie E. Harlow
Sep 6, 2019; 166:A3031-A3044
Batteries and Energy Storage -
How to Cool Lithium Ion Batteries: Optimising Cell Design using a Thermally Coupled Model
Yan Zhao
Aug 21, 2019; 166:A2849-A2859
Batteries and Energy Storage -
Influence of the Electrolyte Quantity on Lithium-Ion Cells
Florian J. Günter
May 29, 2019; 166:A1709-A1714
Batteries and Energy Storage -
Mechanism of Gases Generation during Lithium-Ion Batteries Cycling
N. E. Galushkin
Mar 15, 2019; 166:A897-A908
Batteries and Energy Storage -
Determination of Diffusion Coefficients Using Impedance Spectroscopy Data
Tien Quang Nguyen
Nov 14, 2018; 165:E826-E831
Electrochemical Engineering -
Energy Density of Cylindrical Li-Ion Cells: A Comparison of Commercial 18650 to the 21700 Cells
Jason B. Quinn
Oct 19, 2018; 165:A3284-A3291
Batteries and Energy Storage -
Dioxazolone and Nitrile Sulfite Electrolyte Additives for Lithium-Ion Cells
David S. Hall
Sep 19, 2018; 165:A2961-A2967
Batteries and Energy Storage -
News: Best Poster Prize at EMRS Spring meeting 2018
Symposium R at the E-MRS Spring Meeting 2018 in Strasbourg, France was dedicated to Solid State Ionics: Advanced functional materials for solid state devices.
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Selecting the Best Graphite for Long-Life, High-Energy Li-Ion Batteries
Chengyu Mao
Jun 16, 2018; 165:A1837-A1845
Batteries and Energy Storage -
Mechanism of Thermal Runaway in Lithium-Ion Cells
N. E. Galushkin
May 2, 2018; 165:A1303-A1308
Batteries and Energy Storage -
Synthesis of Single Crystal LiNi0.6Mn0.2Co0.2O2 with Enhanced Electrochemical Performance for Lithium Ion Batteries
Hongyang Li
Apr 5, 2018; 165:A1038-A1045
Batteries and Energy Storage -
Factors Limiting Li+ Charge Transfer Kinetics in Li-Ion Batteries
T. Richard Jow
Jan 30, 2018; 165:A361-A367
Batteries and Energy Storage -
Analysis of Li-Ion Battery Electrochemical Impedance Spectroscopy Data: An Easy-to-Implement Approach for Physics-Based Parameter Estimation Using an Open-Source Tool
Matthew D. Murbach
Jan 25, 2018; 165:A297-A304
Batteries and Energy Storage -
Effect of Ambient Storage on the Degradation of Ni-Rich Positive Electrode Materials (NMC811) for Li-Ion Batteries
Roland Jung
Jan 6, 2018; 165:A132-A141
Batteries and Energy Storage -
A Study of the Physical Properties of Li-Ion Battery Electrolytes Containing Esters
E. R. Logan
Jan 3, 2018; 165:A21-A30
Batteries and Energy Storage -
Tracking Internal Temperature and Structural Dynamics during Nail Penetration of Lithium-Ion Cells
Donal P. Finegan
Oct 31, 2017; 164:A3285-A3291
Batteries and Energy Storage -
Review--Practical Challenges Hindering the Development of Solid State Li Ion Batteries
Kian Kerman
Jun 9, 2017; 164:A1731-A1744
Batteries and Energy Storage -
Comparison of Single Crystal and Polycrystalline LiNi0.5Mn0.3Co0.2O2 Positive Electrode Materials for High Voltage Li-Ion Cells
Jing Li
May 23, 2017; 164:A1534-A1544
Batteries and Energy Storage
The first ISSI Senior Award was presented to Prof. Stanley Whittingham of Binghamton University and President of the ISSI from 2009-2011.
He presented a special invited talk at SSI-21 in Padua, which was entitled:
“Solid State Ionics – The Key to the Discovery, Introduction and Domination of Lithium Batteries for Portable Energy Storage”
In 1967 a revolution began in solid state electrochemistry when Ford announced the high ionic mobility of sodium ions in beta alumina, a highly non-stoichiometric material. To measure the ionic conductivity of these materials, mixed ion and electron conducting electrodes were required such as LixV2O5 or NaxWO3. The concept of non-stoichiometry was not a part of the battery community’s language; Dalton’s Law still prevailed. The use of mixed conductors with fast ion conduction led to the recognition that intercalation reactions themselves could be used to store energy, particularly when the mobile ion was lithium. Early efforts focused predominantly on layered structures, such as LixTiS2 and LixV2O5. Exxon briefly commercialized LixTiS2 using a LiAl anode (Whittingham); this was followed by MoliEnergy with LixMoS2 using a pure Li anode (Dahn), which led to a number of safety issues. It was not until an intercalation anode, C6Li (Basu) was combined (SONY) with LiCoO2 (Goodenough) that a commercially viable battery became available. Such batteries now dominate portable energy storage and even are entering MWh size grid storage. Each one of the components depends on an understanding of Solid State Ionics to be successful. However, even today Li cells only store 11-25% of their theoretical capacity. We need to “close this gap” by enhancing both the ionic mobility and the electron mobility in the materials, so that thicker electrodes can be used. There is also a resurgence of interest today in solid electrolytes that would enable the use of pure lithium anodes. These issues will be discussed together with a projection into the future. Many thanks are due to Esso (now ExxonMobil), US DOE, Stanford U. and many colleagues for support over the last decades.
ISSI Board of Directors nominations
ISSI members are invited to submit names of colleagues for positions on the International Society for Solid State Ionics Board. Per the ISSI By-laws, the Board is comprised of 5 Officers and 14 Councillors. Board elections are held during the SSI conference. Board positions becoming available in July, 2024, are as follows:
Officers
Vice-President, President-Elect (one position)
- Acts for President on any occasion in which the President is unable to carry on normal duties
- Assumes role of President at conclusion of term of President, or earlier if the position of President becomes vacant
Secretary
- Serves as Webmaster of the ISSI website: (www.internationalsocietysolidstateionics.org)
- Maintains minutes of Council/Officer meetings
- Maintains records of Society
- Conducts general correspondence, as directed by the President and the Board
Councillors
- Assist with general administration of Society
- May participate in ad-hoc committees appointed by the President.