Key Findings
Researchers at Chongqing University have successfully developed a practical lithium-sulfur (Li-S) pouch cell that combines high energy density with extended cycle life. Their innovation involves utilizing a composite cathode material of cobalt-manganese oxides (Co9S8-Mn3O4) and carbon nanofibers (CNF), along with a novel “electron-injection softening strategy.” This approach has enabled the creation of a 2.22 Ah Li-S pouch cell with an energy density of 389 Wh kg⁻¹, achieving an initial specific capacity of 761 mAh g⁻¹ at a fast 5C charge/discharge rate and maintaining stable cycling performance for over 1000 cycles.
Technical & Clinical Details
- Capacity: 2.22 Ah
- Energy Density: 389 Wh kg⁻¹
- Cathode Material: Co9S8-Mn3O4/Carbon Nanofiber (CNF) composite
- Core Technology: Electron-injection softening strategy, which effectively suppresses the dissolution and migration of polysulfides—a major cause of performance degradation in Li-S batteries—and enhances the stability of the electrode interface.
- Cycling Performance: Demonstrated stable operation for over 1000 cycles at a high 5C charge/discharge rate, maintaining an initial specific capacity of 761 mAh g⁻¹.
- Stability: The strategy was confirmed to significantly improve stability by modulating the electronic structure at the electrode interface, reducing barriers to Li-S reactions.
This research addresses two major challenges that have hindered the practical application of Li-S batteries: the polysulfide shuttle effect and the instability of the electrode interface. The electron-injection softening strategy optimizes electron transfer characteristics at the interface, promoting the kinetics of sulfur reduction reactions while suppressing undesirable side reactions, thereby extending battery life.
Background & Industry Context
Lithium-sulfur batteries hold immense promise as next-generation high-performance batteries, with a theoretical energy density potentially five times that of current lithium-ion batteries (2600 Wh kg⁻¹). They are considered a game-changer for applications requiring light weight and high energy density, such as drones, electric aircraft, and long-range electric vehicles. However, practical implementation has been impeded by challenges like the polysulfide shuttle effect and the instability of the lithium metal anode. Chongqing University’s latest achievement represents a crucial step towards overcoming these hurdles.
Strategic Significance & Outlook
The developed “electron-injection softening strategy” offers a practical approach to significantly enhance the stability of high-energy Li-S batteries. This breakthrough not only accelerates the commercialization of Li-S batteries but also deepens the fundamental understanding of electrode interface electron modulation in next-generation electrochemical energy storage devices. In the future, this work could lead to the development of even higher energy density and longer-lasting batteries, potentially bringing revolutionary advancements, especially in the aerospace and electric transportation sectors.
Source: https://www.eurekalert.org/news-releases/1136194
Get our weekly technology intelligence — free
Receive an infographic that lets you judge at a glance whether each field’s analysis report is worth reading.
Subscribe Free — Weekly Tech Intelligence
By subscribing, you’ll receive Troy-Technical’s weekly technology intelligence newsletter.
- Your email and selected fields are used only to deliver the newsletter.
- We never share your information with third parties.
- You can unsubscribe anytime via the link in each email.
See our Privacy Policy for details.
Takes about a minute · Unsubscribe anytime

Comments