Detail publikačního výsledku

Corrosion-Resistant Shape-Programmable Zn-I2 Battery

SONIGARA, K.; VAGHASIYA, J.; PUMERA, M.

Originální název

Corrosion-Resistant Shape-Programmable Zn-I2 Battery

Anglický název

Corrosion-Resistant Shape-Programmable Zn-I2 Battery

Druh

Článek WoS

Originální abstrakt

Zinc-iodine (Zn-I-2) batteries are promising, low-cost and safe aqueous rechargeable energy storage devices. An iodide shuttle-induced corrosion and poor zinc (Zn) stripping/plating often result in a limited battery lifetime, urges the development of multifunctional Zn anodes. To overcome these problems, here multifunctional Zn-anode is demonstrated with shape-programmability and uniform Zn morphology along low-indexed (002) crystal plane, achieved by electrodepositing Zn on nitinol alloy (nickel-titanium, NiTi). It is found that the surface oxide layer on NiTi supports the uniform Zn deposition with densely packed and planar film formation that leads high corrosion resistance, while adopts the shape-memory function. NiTi-based device achieves extremely steady performance, benefiting from uniform and planar Zn morphology during cycling, whereas the Zn-based device short-circuits due to dendritic development under severe iodide corrosion. It is also demonstrated a flat-shape-programmed flexible pouch cell Zn-I-2 battery (SP-ZIB), which performs well in bent mode, recovers its original flat shape at elevated temperature, and shows consistent performance for validated cycles. The shape-memory function of NiTi makes this Zn-I-2 battery advanced by flexibility and shape-programmable features. This study represents fresh insight for using smart materials as multifunctional features for the next-generation Zn-I-2 batteries.

Anglický abstrakt

Zinc-iodine (Zn-I-2) batteries are promising, low-cost and safe aqueous rechargeable energy storage devices. An iodide shuttle-induced corrosion and poor zinc (Zn) stripping/plating often result in a limited battery lifetime, urges the development of multifunctional Zn anodes. To overcome these problems, here multifunctional Zn-anode is demonstrated with shape-programmability and uniform Zn morphology along low-indexed (002) crystal plane, achieved by electrodepositing Zn on nitinol alloy (nickel-titanium, NiTi). It is found that the surface oxide layer on NiTi supports the uniform Zn deposition with densely packed and planar film formation that leads high corrosion resistance, while adopts the shape-memory function. NiTi-based device achieves extremely steady performance, benefiting from uniform and planar Zn morphology during cycling, whereas the Zn-based device short-circuits due to dendritic development under severe iodide corrosion. It is also demonstrated a flat-shape-programmed flexible pouch cell Zn-I-2 battery (SP-ZIB), which performs well in bent mode, recovers its original flat shape at elevated temperature, and shows consistent performance for validated cycles. The shape-memory function of NiTi makes this Zn-I-2 battery advanced by flexibility and shape-programmable features. This study represents fresh insight for using smart materials as multifunctional features for the next-generation Zn-I-2 batteries.

Klíčová slova

corrosion-free zinc anode; shape-memory battery; smart materials; zinc deposition; zinc-iodine battery

Klíčová slova v angličtině

corrosion-free zinc anode; shape-memory battery; smart materials; zinc deposition; zinc-iodine battery

Autoři

SONIGARA, K.; VAGHASIYA, J.; PUMERA, M.

Rok RIV

2026

Vydáno

01.12.2025

Nakladatel

WILEY-V C H VERLAG GMBH

Periodikum

Advanced energy materials

Svazek

15

Číslo

47

Stát

Spolková republika Německo

Strany počet

10

URL

BibTex

@article{BUT189914,
  author="Kevalkumar Kishorbhai {Sonigara} and Jayraj Vinubhai {Vaghasiya} and Martin {Pumera}",
  title="Corrosion-Resistant Shape-Programmable Zn-I2 Battery",
  journal="Advanced energy materials",
  year="2025",
  volume="15",
  number="47",
  pages="10",
  doi="10.1002/aenm.202401321",
  issn="1614-6832",
  url="https://onlinelibrary.wiley.com/doi/10.1002/aenm.202401321"
}