Ultrafast Electrical Pulse Synthesis of Highly Active Electrocatalysts for Beyond-Industrial-Level Hydrogen Gas Batteries

Taoli Jiang, Zaichun Liu, Yuan Yuan, Xinhua Zheng, Sunhyeong Park, Shuyang Wei, Linxiang Li, Yirui Ma, Shuang Liu, Jinghao Chen, Zhengxin Zhu, Yahan Meng, Ke Li, Jifei Sun, Qia Peng, Wei Chen

Research output: Contribution to journalArticlepeer-review

38 Scopus citations

Abstract

The high reliability and proven ultra-longevity make aqueous hydrogen gas (H2) batteries ideal for large-scale energy storage. However, the low alkaline hydrogen evolution and oxidation reaction (HER/HOR) activities of expensive platinum catalysts severely hamper their widespread applications in H2 batteries. Here, cost-effective, highly active electrocatalysts, with a model of ruthenium-nickel alloy nanoparticles in ≈3 nm anchored on carbon black (RuNi/C) as an example, are developed by an ultrafast electrical pulse approach for nickel-hydrogen gas (Ni-H2) batteries. Having a competitive low cost of about one fifth of Pt/C benckmark, this ultrafine RuNi/C catalyst displays an ultrahigh HOR mass activity of 2.34 A mg−1 at 50 mV (vs RHE) and an ultralow HER overpotential of 19.5 mV at a current density of 10 mA cm−2. As a result, the advanced Ni-H2 battery can efficiently operate under all-climate conditions (from −25 to +50 °C) with excellent durability. Notably, the Ni-H2 cell stack achieves an energy density up to 183 Wh kg−1 and an estimated cost of ≈49 $ kWh−1 under an ultrahigh cathode Ni(OH)2 loading of 280 mg cm−2 and a low anode Ru loading of ≈62.5 µg cm−2. The advanced beyond-industrial-level hydrogen gas batteries provide great opportunities for practical grid-scale energy storage applications.

Original languageEnglish
Article number2300502
JournalAdvanced Materials
Volume35
Issue number32
DOIs
StatePublished - 10 Aug 2023
Externally publishedYes

Keywords

  • HER/HOR catalysts
  • all-climate performance
  • electrical pulse synthesis
  • grid-scale energy storage
  • hydrogen gas batteries
  • long life

Fingerprint

Dive into the research topics of 'Ultrafast Electrical Pulse Synthesis of Highly Active Electrocatalysts for Beyond-Industrial-Level Hydrogen Gas Batteries'. Together they form a unique fingerprint.

Cite this