Close Menu
  • News
  • Industry
  • Solar Panels
  • Commercial
  • Residential
  • Finance
  • Technology
  • Carbon Credit
  • More
    • Policy
    • Energy Storage
    • Utility
    • Cummunity
What's Hot

Tesla launches three-phase Powerwall 3P – SPE

April 23, 2026

Why the UK solar industry needs to own its safety story

April 23, 2026

Fraunhofer ISE develops colored film technology for patterned solar panels

April 23, 2026
Facebook X (Twitter) Instagram
Facebook X (Twitter) Instagram
Solar Energy News
Thursday, April 23
  • News
  • Industry
  • Solar Panels
  • Commercial
  • Residential
  • Finance
  • Technology
  • Carbon Credit
  • More
    • Policy
    • Energy Storage
    • Utility
    • Cummunity
Solar Energy News
Home - News - The new lithium-sulfur battery is fully charged in 12 minutes for more than 1000 cycles
News

The new lithium-sulfur battery is fully charged in 12 minutes for more than 1000 cycles

solarenergyBy solarenergyJanuary 7, 2025No Comments3 Mins Read
Facebook Twitter Pinterest LinkedIn Tumblr Email
Share
Facebook Twitter LinkedIn Pinterest Email

The new lithium-sulfur battery is fully charged in 12 minutes for more than 1000 cycles






The research team led by Professor Jong-sung Yu from the DGIST Department of Energy Science and Engineering has introduced a significant advancement in lithium-sulfur battery technology. Using a new nitrogen-doped porous carbon material, the team has dramatically improved charging speeds, addressing a key barrier to the commercialization of lithium-sulfur batteries.

Although lithium-ion batteries dominate environmentally friendly technologies such as electric vehicles, their limitations include lower energy storage and high costs. Lithium-sulfur batteries, on the other hand, have attracted attention due to their high energy density and cost-effective sulfur components. However, issues such as reduced sulfur use during fast charging have hindered market acceptance.

During battery discharge, lithium polysulfides can form, which migrate into the battery and reduce its performance. Previous approaches to integrate sulfur into porous carbon structures have shown promise but have not achieved the level of performance needed for commercialization.

Professor Yu’s team addressed these challenges by developing a highly graphitic nitrogen-doped multiporous carbon material and integrating it into the battery cathode. This technology maintains a high energy capacity even under fast charging conditions.

The advanced carbon material was synthesized via a magnesium-assisted thermal reduction method, using magnesium and ZIF-8, a metal-organic framework. High temperature reactions with magnesium improve the stability and robustness of the carbon structure, creating a diverse pore system. This allows for a higher sulfur load and improves the interaction between sulfur and the electrolyte, leading to better battery performance.

The lithium-sulfur battery in the study showed remarkable capabilities, with a capacity of 705 mAh g? under fast charging conditions with a full charge in just 12 minutes. This represents a 1.6-fold improvement over conventional batteries. In addition, nitrogen doping effectively suppressed the migration of lithium polysulfide, allowing the battery to maintain a capacity of 82% after 1,000 charge-discharge cycles, highlighting its long-term stability.

See also  Belgian capacity auctions catalyze 1.1 GW of battery storage – SPE

Collaboration with Dr. Khalil Amine of Argonne National Laboratory enabled advanced microscopic analyzes confirming that lithium sulfide (Li2S) forms in a specific orientation within the layered carbon structures. This confirmed that nitrogen doping and the porous architecture improved sulfur loading and enhanced sulfur reactions, thereby accelerating loading rates.

“This research aimed to improve the charging speed of lithium-sulfur batteries using a simple synthesis method involving magnesium. We hope this study will accelerate the commercialization of lithium-sulfur batteries,” said Professor Jong-sung Yu.

Research report:Tailor-made deposition of Li2S for extremely fast-charging lithium-sulfur batteries



Source link

battery charged cycles fully lithiumsulfur minutes
Share. Facebook Twitter Pinterest LinkedIn Tumblr Email
solarenergy
  • Website

Related Posts

Zendure launches battery ranges for residential PV – SPE

April 23, 2026

SolarEdge focuses on C&I with new all-in-one battery – SPE

April 22, 2026

Rongke Power introduces 2 MW/8 MWh vanadium flow battery storage system – SPE

April 21, 2026
Leave A Reply Cancel Reply

Don't Miss
Cummunity

Nexamp is working with Walmart to deliver more than 120 MW of community solar power

By solarenergyDecember 16, 20240

A Nexamp community solar project in Illinois. Nexamp announced it is partnering with Walmart to…

Study Links Solar Surge to evening price increases for fossil energy

March 27, 2025

Nissan presents mini-electric car with retractable sunroof – SPE

October 28, 2025

Community -Zonne -Installations increased by 35% by 35% in 2024

February 19, 2025
Stay In Touch
  • Facebook
  • Twitter
  • Pinterest
  • Instagram
  • YouTube
  • Vimeo
Our Picks

Tesla launches three-phase Powerwall 3P – SPE

April 23, 2026

Why the UK solar industry needs to own its safety story

April 23, 2026

Fraunhofer ISE develops colored film technology for patterned solar panels

April 23, 2026

Thermoacoustic heat pumps are on the verge of commercial breakthrough – SPE

April 23, 2026
Our Picks

Tesla launches three-phase Powerwall 3P – SPE

April 23, 2026

Why the UK solar industry needs to own its safety story

April 23, 2026

Fraunhofer ISE develops colored film technology for patterned solar panels

April 23, 2026
About
About

Stay updated with the latest in solar energy. Discover innovations, trends, policies, and market insights driving the future of sustainable power worldwide.

Subscribe to Updates

Get the latest creative news and updates about Solar industry directly in your inbox!

Facebook X (Twitter) Instagram Pinterest
  • Contact
  • Privacy Policy
  • Terms & Conditions
© 2026 Tsolarenergynews.co - All rights reserved.

Type above and press Enter to search. Press Esc to cancel.