Pd-decorated multi-walled carbon nanotubes integrated into commercial magnesium alloy — validated in two peer-reviewed Q1 papers on two different alloys: 6.89 wt% hydrogen capacity in AZ31 (99% of the corrected theoretical value) and 6.15 wt% reversible capacity in AZ61, around 3.7× mainstream rare-earth (AB5) alloys. Faster uptake, lower desorption energy, stable cycling — without high-pressure tanks.
Pd-decorated MWCNT × AZ31 / AZ61 Mg alloy · 6.89 wt% capacity (AZ31) · 6.15 wt% reversible (AZ61) · +58% kinetics · desorption energy −26% (AZ31) / −31% (AZ61)
To move from producing hydrogen to using it, storage is the hurdle nobody can skip — and that is exactly where PdMWCNT-AZ31 / AZ61 steps in.
Measured on AZ61 Mg alloy + 3 wt% Pd/MWCNT composite (375°C, 3 MPa H₂, Sieverts method).
When a customer says "our existing rare-earth alloy is good enough" — show them this table.
| Metric | Mainstream (AB5 rare-earth) | PdMWCNT-AZ31 / AZ61 (this material) | Customer benefit |
|---|---|---|---|
| H₂ capacity | 1.5–1.65 wt% (at limit) | 6.15 wt% | Double-and-double the range at the same weight |
| System weight | Very heavy, hard to move | Substantially lighter | Enters mobile: ships / drones / heavy trucks |
| Operating env. | Room temp, but bulky | Mid-high temp (pairs with waste heat) | Recovers existing waste heat — no extra power |
| Uptake kinetics | Standard | +58% | Faster refuelling, shorter turnaround |
| Cyclability | — | >95% @ 20 cycles | Dependable service life |
~5nm Pd nanoparticles anchored on the nanotube walls; ball-milling refines the alloy grains from ~50μm to 18.7nm. Catalysis, structure and interface work together to build multi-scale hydrogen transport channels.
Pd nanoparticles act as H₂ dissociation centres, splitting molecules into atoms and markedly lowering the dissociation barrier.
Carbon nanotubes drive intense grain refinement and high dislocation density; grain boundaries and dislocations become fast diffusion "highways" for H atoms.
The Pd/MWCNT/Mg interface offers low-barrier nucleation sites, so MgH₂ nucleates preferentially and avoids a dense hydride layer blocking further reaction.
Especially suited to teams with high-temperature waste-heat environments and lightweight, high-capacity requirements.



High-efficiency storage integrated with ~600°C system waste heat.
Hydrogen ships, drones and rail — where lightweight, high-capacity storage is essential.
Steel and chemical plants turning 200–500°C waste heat into stored energy value.
Low-pressure, endothermic release, non-explosive — the safest solid-state route.
Performance is backed by rigorous research and third-party testing, ready to withstand your engineering team's due diligence.
Performance derives from a peer-reviewed study (academic–industry collaboration, 42 references) on the hierarchical synergy of Pd-decorated MWCNTs enhancing hydrogen storage in AZ61 Mg alloy.
Storage kinetics measured by the Sieverts method; microstructure characterised by XRD / SEM / TEM / XPS; JMAK fitting confirms 3-D diffusion control (Avrami n = 1.48).
Related nano precious-metal materials are verified by independent ICP analysis (e.g., nano-Pt measured at 99.2% purity) — traceable and reproducible quality.
Guangzhou ZnoNova Technology Development Co., Ltd. focuses on the commercialisation and application of advanced hydrogen-energy materials — bringing breakthrough storage materials from the lab to real demand across the hydrogen value chain.
Centred on PdMWCNT-AZ31 / AZ61 solid-state hydrogen storage material, we serve fuel cells, hydrogen vehicles and industrial waste-heat storage with end-to-end support — from material and formulation to application solutions.
Serving China — the world's largest hydrogen market (~30% of global demand, targeting one million fuel-cell vehicles by 2030) — we aim to be the most dependable partner on the materials side.
Commercialising advancedGreen hydrogen has two catalyst-critical steps — making it and storing it. We supply advanced materials for both, so you can source from one partner.
The hydrogen-evolution (cathode) catalyst for water/PEM electrolysis. Engineered for high platinum utilization — less platinum per unit of capacity. Samples & specs on request. Learn more →
Peer-reviewed across two journals (J. Energy Storage 2026; Fuel 2026): a Pd/MWCNT-modified AZ31 alloy reaches 6.89 wt% reversible storage, +58% capacity at 325 °C, with a ~26% lower desorption barrier, DFT-validated. Learn more →
A tunable composite platform: ratio, particle size, carbon type, morphology, dispersibility and supply form set against your application, not fixed in a catalogue.
Searches for “supplier” terms in these categories return almost zero volume. Buyers ask an assistant instead. These pages answer those questions, including where our answer is that we are the wrong supplier.
Beyond hydrogen, Top Nano Technology manufactures a range of nano powders, dispersions and pastes. Each page carries the manufacturer's full specification — and states plainly what we have not measured.
Tell us your application and we'll reply within 1–2 business days with the relevant data and a sample plan.
It pairs a Pd-decorated multi-walled carbon nanotube catalyst with commercial magnesium alloy. Two peer-reviewed Q1 papers validate it on two different alloys: 6.89 wt% hydrogen capacity in AZ31 (99% of the corrected theoretical value) and 6.15 wt% reversible capacity in AZ61 — about 3.7x mainstream rare-earth AB5 alloys — with faster kinetics, lower desorption energy and stable cycling, without high-pressure tanks.
In AZ31 with 5 wt% catalyst: 6.89 wt% capacity (99% of the corrected theoretical value), 446 s absorption / 735 s desorption at 375 °C, desorption activation energy down 26% (132.7 to 98.5 kJ/mol). In AZ61 with 3 wt%: 6.15 wt% reversible capacity and +58% faster kinetics, desorption activation energy down 31% (142.6 to 98.4 kJ/mol). Both retain >95% over 20 cycles.
Fuel cells (SOFC / PEMFC), hydrogen vehicles (ships, drones, vehicles), industrial waste-heat storage and distributed / backup power - best for users with high-temperature or waste heat available.
Yes. ZnoNova supplies high-purity nano precious-metal and functional powders - nano platinum (99.2% ICP-verified), palladium catalysts and water-dispersible nano zinc oxide - for catalysis, fuel cells and coatings.
Yes - free evaluation samples, the full datasheet, SDS and CoA are available to qualified buyers under NDA.