Bluesky Facebook Reddit Email

Researchers develop chainmail integrated-electrode for highly efficient hydrogen sulfide electrolysis

03.20.25 | Dalian Institute of Chemical Physics, Chinese Academy Sciences

Apple iPhone 17 Pro

Apple iPhone 17 Pro delivers top performance and advanced cameras for field documentation, data collection, and secure research communications.

Hydrogen sulfide (H 2 S), a toxic and corrosive byproduct of fossil fuel extraction, poses significant environmental and industrial challenges. While the conventional Claus process converts H 2 S into elemental sulfur, it fails to recover hydrogen gas, missing an opportunity for sustainable energy production.

Electrocatalytic H 2 S decomposition offers a promising strategy to simultaneously eliminating pollutants and producing green hydrogen. However, the acidic nature of H 2 S deactivates non-precious metal catalysts and degrades electrode structures, making it difficult to achieve both high efficiency and long-term stability.

In a study published in Angew. Chem. Int. Ed. , a research group led by Prof. DENG Dehui and Assoc. Prof. CUI Xiaoju from the Dalian Institute of Chemical Physics (DICP) of the Chinese Academy of Sciences has developed a dual-level chainmail integrated-electrode that enables highly efficient hydrogen production via H 2 S electrolysis.

Researchers designed a graphene encapsulating nickel foam (Ni@NC foam) electrode with a dual-level chainmail structure, enhancing both catalytic activity and durability. This electrode achieved an industrial-scale current density exceeding 1 A/cm 2 at 1.12 V versus the reversible hydrogen electrode, which is five times higher than commercial nickel foam electrodes. The Ni@NC foam electrode remained stable for over 300 hours, demonstrating a lifespan at least ten times longer than commercial nickel foam electrodes.

In a simulated natural gas desulfurization test, the chainmail integrated-electrode completely oxidized and removed 20% H 2 S at the anode, producing sulfur powder simultaneously. Meanwhile, high-purity hydrogen was collected at the cathode. Compared with conventional water electrolysis, the system reduced energy consumption by 43% at the current density of 200 mA/cm², offering a more sustainable approach to hydrogen production.

"Our study provides an efficient, low-energy solution for natural gas purification and opens up the potential of converting H 2 S into valuable hydrogen fuel for industrial applications," said Prof. DENG.

Angewandte Chemie International Edition

10.1002/anie.202502032

Commentary/editorial

Not applicable

Highly Effective and Durable Integrated-Chainmail Electrode for H2 Production through H2S Electrolysis

13-Feb-2025

Keywords

Article Information

Contact Information

Jean Wang
Dalian Institute of Chemical Physics, Chinese Academy Sciences
wangyj@dicp.ac.cn

How to Cite This Article

APA:
Dalian Institute of Chemical Physics, Chinese Academy Sciences. (2025, March 20). Researchers develop chainmail integrated-electrode for highly efficient hydrogen sulfide electrolysis. Brightsurf News. https://www.brightsurf.com/news/LN2E9XE1/researchers-develop-chainmail-integrated-electrode-for-highly-efficient-hydrogen-sulfide-electrolysis.html
MLA:
"Researchers develop chainmail integrated-electrode for highly efficient hydrogen sulfide electrolysis." Brightsurf News, Mar. 20 2025, https://www.brightsurf.com/news/LN2E9XE1/researchers-develop-chainmail-integrated-electrode-for-highly-efficient-hydrogen-sulfide-electrolysis.html.