| Cobalt Doped Ti3C2tx MXene | |
| Product Number | NRE-59014-2 |
| CAS No. | 12363-89-2 |
| Formula | Ti₃C₂Tₓ–Co |
| Molecular Weight | 167.62 g/mol |
| Cobalt Doping | 5 wt.% |
| MXene Purity | ≥99.0% |
| APS | < 40 um (Can be customized) |
Cobalt Doped Ti3C2tx MXene
Cobalt Doped Ti3C2tx MXene (5 wt.% Co) is an advanced two-dimensional nanomaterial that combines the exceptional electrical conductivity and layered structure of Ti₃C₂Tₓ MXene with the enhanced catalytic activity provided by cobalt doping. The incorporation of 5 wt.% cobalt significantly improves electron transfer, increases the number of active surface sites, and enhances electrochemical performance, making this material suitable for a wide range of advanced research and industrial applications.
One of the primary applications of cobalt-doped Ti₃C₂Tₓ is in energy storage systems. It serves as a high-performance electrode material for lithium-ion, sodium-ion, potassium-ion, and zinc-ion batteries, where its high conductivity and large surface area contribute to improved charge storage capacity, faster ion diffusion, and superior cycling stability. The material is also widely used in supercapacitors, enabling high power density, rapid charge-discharge capability, and long operational life.
In electrocatalysis, cobalt-doped MXene demonstrates outstanding performance in hydrogen evolution reaction (HER), oxygen evolution reaction (OER), and oxygen reduction reaction (ORR). These properties make it an excellent candidate for water electrolysis, hydrogen production, rechargeable metal-air batteries, and fuel cell technologies. The synergistic interaction between cobalt nanoparticles and the MXene surface enhances catalytic efficiency while reducing overpotential.
The material is also valuable in sensor technology, including gas sensors, electrochemical sensors, and biosensors. Its high conductivity, rapid electron transport, and chemically active surface enable fast response times, excellent sensitivity, and reliable detection of gases, biomolecules, and environmental pollutants.
In addition, cobalt-doped Ti₃C₂Tₓ is used in electromagnetic interference (EMI) shielding due to its excellent electrical conductivity and layered architecture, making it suitable for aerospace, telecommunications, and consumer electronics. It is also incorporated into conductive polymers and nanocomposites to improve mechanical strength, thermal stability, and electrical performance.
Emerging applications include flexible electronics, wearable devices, printed electronics, photocatalysis, environmental remediation, and advanced composite materials. Researchers are also exploring its potential in next-generation energy conversion systems and multifunctional smart materials. With its combination of high conductivity, catalytic activity, and structural stability, Cobalt Doped Ti₃C₂Tₓ MXene Powder continues to be a promising material for cutting-edge scientific research and innovative engineering applications.




