We collaborate with universities, R&D labs, and research scholars to accelerate discovery in materials chemistry, electrochemistry, and nanotechnology. Our research-grade nanomaterials—such as Transition metal oxide/chalcogenides, BN and BCN nanosheets, rGO, and lithium-based phosphates/borates/silicates—serve as reliable standards for experimental and simulation studies. We also offer custom synthesis, material characterization support (XRD, XPS, FESEM, TEM/HRTEM, Raman, EIS), and consultancy for PhD and postdoctoral projects, bridging academic research with industrial application.
We support startups and R&D teams working on lithium-ion, sodium-ion, solid-state, and hybrid energy storage systems. Our high-purity cathode, anode, and solid electrolyte materials—such as, graphite, LCO, LFP, LMFP, NMC, LMO, LTO, LATP, LLZTO, Si/C, and novel Nb-, Mo-, and W-based compounds—enhance cycle life, ionic conductivity, and stability under real-world conditions. Through material optimization and electrochemical impedance analysis, we help startups scale their prototypes faster—from lab to pre-commercial scale.
Our advanced nanostructured carbides, sulfides, and borides serve as high-performance electrocatalysts for Hydrogen Evolution Reaction (HER), Oxygen Evolution Reaction (OER), and Oxygen Reduction Reaction (ORR). Materials like WC nanotubes, Mo₂C nanosheets, and WS₂/BN heterostructures show exceptional catalytic activity, durability, and corrosion resistance—ideal for hydrogen production, fuel cells, and CO₂ reduction systems.
Our ultra-pure, uniform nanomaterials deliver precise electronic, dielectric, and optical properties, enabling breakthroughs in microelectronics, MEMS devices, and nanosensors. Materials such as MoS₂ and WS₂ nanosheets, BN/SiC nanotubes, and oxide semiconductors (WO₃, TiO₂, Nb₂O₅) are tuned for bandgap control, carrier mobility, and surface reactivity. We assist semiconductor firms and research labs in developing next-generation transistors, gas sensors, photodetectors, and flexible optoelectronics.
Our nanotubes, nanosheets, and carbide powders impart exceptional hardness, wear resistance, lubrication, and thermal stability when integrated into coatings and composites. From solid lubricants (WS₂, MoS₂) to conductive fillers (rGO, BCN, TiC) and corrosion-resistant additives (Nb₂O₅, WC), we provide functional nanomaterials that enhance the mechanical, electrical, and tribological properties of base materials.
We offer oxide, borate, and phosphide nanomaterials that improve the thermal, optical, and structural performance of ceramic and pigment formulations. Our materials such as, Fe₂O₃, Cr₂O₃, NiTiO₃, ZnFe₂O₄, CoCr₂O₄, ZrSiO₄, Al₂O₃, TiO₂, Mn-, Ni-, and Co-borates provide enhanced sintering behavior, color stability, and emissivity, enabling vibrant, durable, and functional ceramic components.