Skip to main content

Nissan’s new analysis method may boost driving range of EVs

Nissan Motor Company and Nissan Arc have jointly developed an atomic analysis methodology that they claim will aid in boosting the performance of lithium-ion batteries and ultimately extend the driving range of zero-emission electric vehicles (EVs). The breakthrough was the result of a combined R&D effort between Nissan Arc, a Nissan subsidiary, Tohoku University, the National Institute for Materials Science (NIMS), the Japan Synchrotron Radiation Research Institute (JASRI) and Japan Science and Technolo
May 16, 2016 Read time: 2 mins
838 Nissan Motor Company and Nissan Arc have jointly developed an atomic analysis methodology that they claim will aid in boosting the performance of lithium-ion batteries and ultimately extend the driving range of zero-emission electric vehicles (EVs).

The breakthrough was the result of a combined R&D effort between Nissan Arc, a Nissan subsidiary, Tohoku University, the National Institute for Materials Science (NIMS), the Japan Synchrotron Radiation Research Institute (JASRI) and Japan Science and Technology Agency (JST).

The analysis examines the structure of amorphous silicon monoxide (SiO), widely seen as key to boosting next-generation lithium-ion battery (Li-ion) capacity, allowing researchers to better understand electrode structure during charging cycles.

Silicon (Si) is capable of holding greater amounts of lithium compared with common carbon-based materials, but in crystalline form possesses a structure that deteriorates during charging cycles, ultimately impacting performance. However, amorphous SiO is resistant to such deterioration.

Its base structure had been unknown, making it difficult for mass production. However, the new methodology provides an accurate understanding of the amorphous structure of SiO, based on a combination of structural analyses and computer simulations. The new findings indicate that its structure allows the storage of a larger number of Li-ions, in turn leading to better battery performance.

For more information on companies in this article

Related Content

  • Entropy highlights Azoth platform
    January 17, 2025
    Real-time data can forecast passenger movements up to 24 hours ahead
  • UK government announces investment in electric and hybrid battery research
    September 7, 2012
    The UK Government has announced an investment of £9 million (US$14.4 million) with a further £4 million (US$6.3 million) from industry into new Energy Storage R&D Centre which will work to accelerate the development of the next generation of batteries for electric and hybrid vehicles. The Department for Business, Innovation and Skills hopes that the new £13 (US$20.7 million) million centre, which will be based at the University of Warwick, will help the UK to capitalise on the growing electric and hybrid ve
  • Workzone safety can be economically viable
    October 24, 2014
    David Crawford looks how workzone safety can be ‘economically viable’. Highway maintenance is one of the most dangerous construction industry occupations in Europe. Research from The Netherlands on fatal crashes indicates that the risk facing road workzone operatives is ‘significantly higher’ than that for the general construction workforce. A survey carried out by the Highways Agency, which runs the UK’s motorway and trunk road network, has suggested that 20% of road workers have suffered injuries from pa
  • Rethink required to reduce road transport’s environmental impact
    March 15, 2016
    Against a background of a renewed focus on limiting the rise in average temperatures, Colin Sowman looks at a project that is taking a holistic approach to the environmental impact and safety of road transport. At the COP21 meeting in Paris last December, almost 200 nations agreed to reduce greenhouse gas emissions in an effort to keep the rise in global temperatures to 2°C) compared with pre-industrial levels. The transportation sector is a major contributor to the production of CO2, one of the main green