TiNb6O17: a new electrode material for lithium-ion batteries

2015 ◽  
Vol 51 (43) ◽  
pp. 8970-8973 ◽  
Author(s):  
Chunfu Lin ◽  
Guizhen Wang ◽  
Shiwei Lin ◽  
Jianbao Li ◽  
Li Lu

TiNb6O17, with a significantly larger capacity than Li4Ti5O12, fulfils the requirements of high power and energy density for electric vehicles.

2015 ◽  
Vol 3 (16) ◽  
pp. 8627-8635 ◽  
Author(s):  
Chunfu Lin ◽  
Shu Yu ◽  
Shunqing Wu ◽  
Shiwei Lin ◽  
Zi-Zhong Zhu ◽  
...  

Ru0.01Ti0.99Nb2O7, with a much larger capacity than Li4Ti5O12, fulfils the requirements of high power and energy density for electric vehicles.


2021 ◽  
Author(s):  
Yujing Bi ◽  
Deyu Wang

As electric vehicle market growing fast, lithium ion batteries demand is increasing rapidly. Sufficient battery materials supplies including cathode, anode, electrolyte, additives, et al. are required accordingly. Although layered cathode is welcome in high energy density batteries, it is challenging to balance the high energy density and safety beside cost. As consequence, olivine phosphate cathode is coming to the stage center again along with battery technology development. It is important and necessary to revisit the olivine phosphate cathode to understand and support the development of electric vehicles utilized lithium ion batteries. In addition, blend cathode is a good strategy to tailor and balance cathode property and performance. In this chapter, blend cathode using olivine phosphate cathode will be discussed as well as olivine phosphate cathode.


2019 ◽  
Vol 3 (1) ◽  
pp. 1-42 ◽  
Author(s):  
Jian Duan ◽  
Xuan Tang ◽  
Haifeng Dai ◽  
Ying Yang ◽  
Wangyan Wu ◽  
...  

Abstract Lithium-ion batteries (LIBs), with relatively high energy density and power density, have been considered as a vital energy source in our daily life, especially in electric vehicles. However, energy density and safety related to thermal runaways are the main concerns for their further applications. In order to deeply understand the development of high energy density and safe LIBs, we comprehensively review the safety features of LIBs and the failure mechanisms of cathodes, anodes, separators and electrolyte. The corresponding solutions for designing safer components are systematically proposed. Additionally, the in situ or operando techniques, such as microscopy and spectrum analysis, the fiber Bragg grating sensor and the gas sensor, are summarized to monitor the internal conditions of LIBs in real time. The main purpose of this review is to provide some general guidelines for the design of safe and high energy density batteries from the views of both material and cell levels. Graphic Abstract Safety of lithium-ion batteries (LIBs) with high energy density becomes more and more important in the future for EVs development. The safety issues of the LIBs are complicated, related to both materials and the cell level. To ensure the safety of LIBs, in-depth understanding of the safety features, precise design of the battery materials and real-time monitoring/detection of the cells should be systematically considered. Here, we specifically summarize the safety features of the LIBs from the aspects of their voltage and temperature tolerance, the failure mechanism of the LIB materials and corresponding improved methods. We further review the in situ or operando techniques to real-time monitor the internal conditions of LIBs.


2011 ◽  
Vol 158 (8) ◽  
pp. A930 ◽  
Author(s):  
Haegyeom Kim ◽  
Sung-Wook Kim ◽  
Jihyun Hong ◽  
Hee-Dae Lim ◽  
Hyung Sub Kim ◽  
...  

Electronics ◽  
2019 ◽  
Vol 8 (10) ◽  
pp. 1201 ◽  
Author(s):  
Neha Chawla ◽  
Meer Safa

Lithium-ion batteries are currently used for various applications since they are lightweight, stable, and flexible. With the increased demand for portable electronics and electric vehicles, it has become necessary to develop newer, smaller, and lighter batteries with increased cycle life, high energy density, and overall better battery performance. Since the sources of lithium are limited and also because of the high cost of the metal, it is necessary to find alternatives. Sodium batteries have shown great potential, and hence several researchers are working on improving the battery performance of the various sodium batteries. This paper is a brief review of the current research in sodium-sulfur and sodium-air batteries.


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