On November 21, 2025, scientists based in Bengaluru unveiled a breakthrough in Zinc-ion batteries (ZIBs). They designed a cathode material suitable for environmentally friendly Zinc batteries. Led by Dr. Ashutosh Kumar Singh of the Centre for Nano and Soft Matter Sciences (CeNS) under the Department of Science & Technology (DST), the research team developed a strategy involving thermo-electrochemical treatment to modify the cathode material structure. This process transforms vanadium oxide (V2O5) into zinc-vanadium oxide (Zn-V2O5) by creating a porous structure that enhances energy storage and stability, allowing it to store more energy and be recharged thousands of times without significant degradation. According to Rahuldeb Roy, a co-author of the research, this "activation" process could enhance storage performance of other cathode materials and advance efforts to develop sustainable energy storage technologies. These findings have been recently published in the Advanced Energy Materials (DOI: 10.1002/aenm.202502262.).
Key Entities Referenced
Ministry of Science & Technology: The ministry under which the research was conducted.
Zinc-ion batteries (ZIBs): Next generation eco-friendly batteries under development.
Department of Science & Technology (DST): The autonomous institute under which CeNS operates.
Centre for Nano and Soft Matter Sciences (CeNS): Autonomous institute that conducted the research on Zinc-ion batteries.
Advanced Energy Materials: Journal in which the findings of the research were published.
Ministry of Science & Technology
Research paves the way for efficient Zinc-ion
batteries (ZIBs) for a greener future
Posted On: 21 NOV 2025 12:07PM by PIB Delhi
Bengaluru based scientists have unveiled a breakthrough that could power the next generation of eco-
friendly batteries. Moving beyond lithium batteries, the currently favourite one, researchers have
designed a cathode material suitable for the more environment friendly Zinc batteries. This can
enhance the energy density and stability of the materials resulting in more efficient batteries.
Significant advances in energy storage over the past few decades have been focused largely around
lithium batteries because of their desirable performance - mainly high energy density, although they
come with several environmental and safety risks during use. As an alternative, recently, aqueous
zinc-ion-based battery (ZIB) systems have been attracting attention due to their high energy storage
capacity, safety, and environmental friendliness.
Researchers around the world are developing various cathode materials that can be suitable for zinc-
ion-based electrolyte systems and can last for a long time with high energy storage capacity. Several
oxide materials are already being investigated in this regard, but have failed to demonstrate the
required performance in zinc-ion-based systems due to many limitations.
To solve that, a research team led by Dr. Ashutosh Kumar Singh of the Centre for Nano and Soft
Matter Sciences (CeNS), an autonomous institute under the Department of Science & Technology
(DST), Government of India, have come up with a new simple strategy to activate the cathode
material by thermo-electrochemical treatment to modify its structure. This could help the batteries
gain high energy storage performance. This represents a straightforward and efficient approach to
enhancing the overall energy density and stability of the usual cathode materials.Fig. The in-situ thermo-electrochemical activation of V O cathode material.
2 5
The innovation lies in a simple "activation" process for a common battery material, vanadium oxide
(V O ). By treating it with a special combination of heat and electricity, they transformed its
2 5
structure, deliberately creating useful "flaws" or defects. Think of it like turning a solid, smooth wall
into a porous, spongy one. This new, imperfect structure, called zinc-vanadium oxide (Zn-V O ), has
2 5
tiny spaces and pathways that allow it to store and release far more energy efficiently compare to
V O . The Zn-V O structure also allows for hydrogen ion interaction from the battery's electrolyte,
2 5 2 5
thereby improving structural stability and lowering the barrier for zinc ion movement during battery
charging/discharging processes.
The activated material enables the zinc-ion battery (ZIB) to achieve a dramatically higher energy
density and incredible longevity. It can store much more energy and be recharged thousands of times
without significant degradation.
These findings by Dr. Ashutosh Kumar Singh and his team recently published in the Advanced
Energy Materials, tackling a long-standing challenge in zinc-ion battery research.
Mr. Rahuldeb Roy, a co-author of the research, said, “By realizing the difficulty involved in
stabilizing the cathode material as well as structurally modifying to gain the enhanced performance,
we opted for an oversimplified but novel strategy to activate the usual cathode materials used for Zn-
ion battery.”
He added that this study not only advances the field of ZIBs but also this particular technique can also
be applied to other cathode materials to enhance storage performance. It could lead to greater efforts
to develop sustainable and efficient energy storage technologies for a greener future.
Link to publication: DOI: 10.1002/aenm.202502262.
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