Structural Engineering of Prussian Blue Analogues Enabling All-Climate and Ultralong Cycling Sodium-Ion Batteries

  • Jian Peng
  • , Weibo Hua
  • , Zhuo Yang
  • , Jia Yang Li
  • , Jinsong Wang
  • , Yaru Liang
  • , Lingfei Zhao
  • , Weihong Lai
  • , Xingqiao Wu
  • , Zhenxiang Cheng
  • , Germanas Peleckis
  • , Sylvio Indris
  • , Jia Zhao Wang
  • , Hua Kun Liu
  • , Shi Xue Dou
  • , Shulei Chou

Research output: Contribution to journalArticlepeer-review

32 Scopus citations

Abstract

The development of cost-efficient, long-lifespan, and all-climate sodium-ion batteries is of great importance for advancing large-scale energy storage but is plagued by the lack of suitable cathode materials. Here, we report low-cost Na-rich Mn-based Prussian blue analogues with superior rate capability and ultralong cycling stability over 10,000 cycles via structural optimization with electrochemically inert Ni atoms. Their thermal stability, all-climate properties, and potential in full cells are investigated in detail. Multiple in situ characterizations reveal that the outstanding performances benefit from their highly reversible three-phase transformations and trimetal (Mn-Ni-Fe) synergistic effects. In addition, a high sodium diffusion coefficient and a low volume distortion of 2.3% are observed through in situ transmission electron microscopy and first-principles calculations. Our results provide insights into the structural engineering of Prussian blue analogues for advanced sodium-ion batteries in large-scale energy storage applications.

Original languageEnglish
JournalACS Nano
DOIs
StateAccepted/In press - 2024

Keywords

  • Prussian blue
  • large-scale energy storage
  • low-cost
  • sodium-ion batteries
  • structure engineering

Fingerprint

Dive into the research topics of 'Structural Engineering of Prussian Blue Analogues Enabling All-Climate and Ultralong Cycling Sodium-Ion Batteries'. Together they form a unique fingerprint.

Cite this