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SciMater™ MXene Dispersion (43 Series, Mo2TiC, Mo2Ti2C3, Nb4C3, V4C3)

  • Product Code:Mo2TiC, Mo2Ti2C3, Nb4C3, V4C3
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  • Keywords:SciMater™ MXene Dispersion (43 Series, Mo2TiC, Mo2Ti2C3, Nb4C3, V4C3), SCI Materials Hub
SciMater™ Two-Dimensional Materials

SciMaterTM MXene Dispersions (43 Series)

Mo₂TiC, Mo₂Ti₂C₃, Nb₄C₃ and V₄C₃ | Few-Layer / Predominantly Single-Layer Dispersions | 5 mg/mL

43-Series MXenes 4 Chemical Formulas Multi-Metal and Single-Metal Systems Few-Layer Dispersions 5 mg/mL

The SciMater™ 43-series MXene dispersion portfolio includes Mo₂TiC, Mo₂Ti₂C₃, Nb₄C₃ and V₄C₃ two-dimensional transition-metal carbides. All products are supplied as few-layer / predominantly single-layer dispersions at a nominal concentration of 5 mg/mL for electrochemistry, catalysis, thin-film fabrication, sensing, interface studies and composite-material research.

Product Overview

Materials and product forms

The 43-series MXene dispersions consist of few-layer or predominantly single-layer Mo₂TiC, Mo₂Ti₂C₃, Nb₄C₃ and V₄C₃ two-dimensional sheets. Their liquid form is suitable for direct use in thin films, coatings, electrodes, catalytic systems and composite-material research.

This series includes multi-metal carbides as well as niobium-based and vanadium-based carbides. Differences in metal composition may influence sheet-surface chemistry, electronic structure, interfacial behavior and experimental performance.

Mo₂TiC

Multi-Metal Dispersion

Suitable for multi-metal interfaces, electrochemistry, catalysis and composite-material research.

Mo₂Ti₂C₃

Multi-Metal Dispersion

Suitable for energy storage, catalysis, thin films and two-dimensional interface assembly.

Nb₄C₃

Niobium-Based Dispersion

Suitable for electrochemistry, photothermal research, conductive films and functional interfaces.

V₄C₃

Vanadium-Based Dispersion

Suitable for ion storage, catalysis, sensing and fundamental two-dimensional material research.

Concentration Specification

Nominal product concentration
Product Concentration
5 mg/mL Mo₂TiC, Mo₂Ti₂C₃, Nb₄C₃ and V₄C₃ are all supplied as few-layer / predominantly single-layer dispersions.

Core Product Parameters

Model comparison
Chemical Formula / ModelResearch NotationCatalog SeriesComposition TypeProduct FormConcentrationPrimary Applications
Mo2TiCMo2TiCTxMXene Dispersions
43 Series
Multi-Metal CarbideFew-Layer / Predominantly Single-Layer Dispersion5 mg/mLMulti-metal interfaces, electrochemistry, catalysis and composite materials
Mo2Ti2C3Mo2Ti2C3TxMulti-Metal CarbideEnergy storage, catalysis, thin films and two-dimensional interface assembly
Nb4C3Nb4C3TxNiobium-Based CarbideElectrochemistry, photothermal research, conductive films and functional interfaces
V4C3V4C3TxVanadium-Based CarbideIon storage, catalysis, sensing and two-dimensional material research

Typical Applications

Research scenarios

01Electrochemical Energy Storage

Electrode preparation, ion-storage research, supercapacitors and two-dimensional conductive-network studies.

02Catalysis Research

Active-component loading, interfacial catalysis and investigations of possible multi-metal synergistic effects.

03Thin Films and Coatings

Vacuum filtration, spin coating, spray coating, drop casting and blade coating for film preparation.

04Composite Materials

Combination with polymers, oxides, carbon materials and other two-dimensional materials.

05Sensors and Devices

Humidity, gas, biochemical and strain-sensing research using two-dimensional functional interfaces.

06Fundamental Materials Research

Metal composition, sheet structure, dispersion stability and interfacial-behavior studies.

Instructions for Use

Recommended handling workflow
  1. 01 Inspect the Dispersion Check the dispersion state, color and container seal before use. Mild sedimentation may be addressed by slowly shaking or gently mixing the container.
  2. 02 Mix Gently Use vortex mixing, slow stirring or brief low-power ultrasonication. Avoid prolonged high-power treatment and significant temperature rise.
  3. 03 Adjust the Concentration Dilute gradually according to the experimental requirement and record the dispersion medium, dilution ratio and final concentration.
  4. 04 Prepare the Sample Use vacuum filtration, drop casting, spin coating, spray coating, blade coating, electrode-slurry preparation or composite mixing as required.
  5. 05 Reseal and Store Reseal immediately after use, protect from light and minimize exposure to air and repeated temperature fluctuations.
Different MXene dispersion formulas should not be mixed or used interchangeably without prior verification. For comparative or composite experiments, use consistent concentration, processing time, film thickness and sample-preparation conditions.

Frequently Asked Questions

Selection and handling
01Do all four products have the same concentration?
Yes. The Mo₂TiC, Mo₂Ti₂C₃, Nb₄C₃ and V₄C₃ few-layer / predominantly single-layer dispersions are all supplied at a nominal concentration of 5 mg/mL.
02What is the difference between Mo₂TiC and Mo₂Ti₂C₃?
Their elemental ratios and carbon-layer compositions are different. These compositional differences may produce different electronic structures, surface chemistry and experimental behavior.
03Can the performance of different models be compared directly?
Comparative experiments should use consistent concentrations, sample-preparation procedures, film thicknesses and testing conditions. Batch-specific sheet size, layer-number distribution and surface condition should also be considered.
04How should mild sedimentation be handled?
Slowly shake or gently mix the dispersion first. Short-duration, low-power treatment may also be used. Avoid prolonged high-power ultrasonication, which may change the lateral dimensions of the MXene sheets.
05How should the dispersions be stored?
Store sealed and protected from light while minimizing air exposure. Avoid elevated temperatures, strong light and repeated freeze–thaw cycles.
This information is provided for research-product selection and experimental-design reference. Actual lateral size, layer-number distribution, surface terminations and batch stability should be confirmed using the corresponding batch-specific technical data.

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Few-Layer / Single-Layer MXene Dispersion (43 Series) Specifications / Price List

Mo₂TiC, Mo₂Ti₂C₃, Nb₄C₃, and V₄C₃ ' Concentration: 5 mg/mL

Chemical Formula / ModelProduct FormSolventConcentration25 mL50 mL100 mL200 mL
Mo2TiCFew-Layer / Single-Layer DispersionPlease Inquire5 mg/mLAsk for quote$585Ask for quote$1,840
Mo2Ti2C3Ask for quote$585Ask for quote$1,840
Nb4C3Ask for quote$585Ask for quote$1,840
V4C3Ask for quote$585Ask for quote$1,840

Partial references citing our materials (from Google Scholar)


Carbon Dioxide Reduction

1. ACS Nano Strain Relaxation in Metal Alloy Catalysts Steers the Product Selectivity of Electrocatalytic CO2 Reduction

The bipolar membrane (Fumasep FBM) in this paper was purchased from SCI Materials Hub, which was used in rechargeable Zn-CO2 battery tests. The authors reported a strain relaxation strategy to determine lattice strains in bimetal MNi alloys (M = Pd, Ag, and Au) and realized an outstanding CO2-to-CO Faradaic efficiency of 96.6% with outstanding activity and durability toward a Zn-CO2 battery.


2. Front. Chem. Boosting Electrochemical Carbon Dioxide Reduction on Atomically Dispersed Nickel Catalyst

In this paper, Vulcan XC-72R was purchased from SCI Materials Hub. Vulcan XC 72R carbon is the most common catalyst support used in the anode and cathode electrodes of Polymer Electrolyte Membrane Fuel Cells (PEMFC), Direct Methanol Fuel Cells (DMFC), Alkaline Fuel Cells (AFC), Microbial Fuel Cells (MFC), Phosphoric Acid Fuel Cells (PAFC), and many more!


3. Adv. Mater. Partially Nitrided Ni Nanoclusters Achieve Energy-Efficient Electrocatalytic CO2 Reduction to CO at Ultralow Overpotential

An AEM membrane (Sustainion X37-50 Grade RT, purchased from SCI Materials Hub) was activated in 1 M KOH for 24 h, washed with ultra-purity water prior to use.


4. Adv. Funct. Mater. Nanoconfined Molecular Catalysts in Integrated Gas Diffusion Electrodes for High-Current-Density CO2 Electroreduction

In this paper (Supporting Information), an anion exchanged membrane (Fumasep FAB-PK-130 obtained from SCI Materials Hub (www.scimaterials.cn)) was used to separate the catholyte and anolyte chambers.

SCI Materials Hub: we also recommend our Fumasep FAB-PK-75 for the use in a flow cell.


5. Appl. Catal. B Efficient utilization of nickel single atoms for CO2 electroreduction by constructing 3D interconnected nitrogen-doped carbon tube network

In this paper, the Nafion 117 membrane was obtained from SCI Materials Hub.


6. Vacuum Modulable Cu(0)/Cu(I)/Cu(II) sites of Cu/C catalysts derived from MOF for highly selective CO2 electroreduction to hydrocarbons

In this paper, Proton exchange membrane (Nafion 117), Nafion D520, and Toray 060 carbon paper were purchased from SCI Materials Hub.


7. National Science Review Confinement of ionomer for electrocatalytic CO2 reduction reaction via efficient mass transfer pathways

An anion exchange membrane (PiperION-A15-HCO3) was obtained from SCI Materials Hub.


8. Catalysis Communications Facilitating CO2 electroreduction to C2H4 through facile regulating {100} & {111} grain boundary of Cu2O

Carbon paper (TGPH060), membrane solution (Nafion D520), and ionic membrane (Nafion N117) were obtained from Wuhu Eryi Material Technology Co., Ltd (a company under SCI Materials Hub).


Batteries

1. J. Mater. Chem. A Blocking polysulfides with a Janus Fe3C/N-CNF@RGO electrode via physiochemical confinement and catalytic conversion for high-performance lithium–sulfur batteries

Graphene oxide (GO) in this paper was obtained from SCI Materials Hub. The authors introduced a Janus Fe3C/N-CNF@RGO electrode consisting of 1D Fe3C decorated N-doped carbon nanofibers (Fe3C/N-CNFs) side and 2D reduced graphene oxide (RGO) side as the free-standing carrier of Li2S6 catholyte to improve the overall electrochemical performance of Li-S batteries.


2. Joule A high-voltage and stable zinc-air battery enabled by dual-hydrophobic-induced proton shuttle shielding

This paper used more than 10 kinds of materials from SCI Materials Hub and the authors gave detailed properity comparsion.

The commercial IEMs of Fumasep FAB-PK-130 and Nafion N117 were obtained from SCI Materials Hub.

Gas diffusion layers of GDL340 (CeTech) and SGL39BC (Sigracet) and Nafion dispersion (Nafion D520) were obtained from SCI Materials Hub.

Zn foil (100 mm thickness) and Zn powder were obtained from the SCI Materials Hub.

Commercial 20% Pt/C, 40% Pt/C and IrO2 catalysts were also obtained from SCI Materials Hub.


3. Journal of Energy Chemistry Vanadium oxide nanospheres encapsulated in N-doped carbon nanofibers with morphology and defect dual-engineering toward advanced aqueous zinc-ion batteries

In this paper, carbon cloth (W0S1011) was obtained from SCI Materials Hub. The flexible carbon cloth matrix guaranteed the stabilization of the electrode and improved the conductivity of the cathode.


4. Energy Storage Materials Defect-abundant commercializable 3D carbon papers for fabricating composite Li anode with high loading and long life

The 3D carbon paper (TGPH060 raw paper) were purchased from SCI Materials Hub.


5. Nanomaterials A Stable Rechargeable Aqueous Zn–Air Battery Enabled by Heterogeneous MoS2 Cathode Catalysts

Nafion D520 (5 wt%), and carbon paper (GDL340) were received from SCI-Materials-Hub.


6. SSRN An Axially Directed Cobalt-Phthalocyanine Covalent Organic Polymer as High-Efficient Bifunctional Catalyst for Zn-Air Battery

Carbon cloth (W0S1011) and other electrochemical consumables required for air cathode were provided by SCI Materials Hub.


Oxygen Reduction Reaction

1. J. Chem. Eng. Superior Efficiency Hydrogen Peroxide Production in Acidic Media through Epoxy Group Adjacent to Co-O/C Active Centers on Carbon Black

In this paper, Vulcan XC 72 carbon black, ion membrane (Nafion N115, 127 μL), Nafion solution (D520, 5 wt%), and carbon paper (AvCarb GDS 2230 and Spectracarb 2050A-1050) were purchased from SCI Materials Hub.


2. Journal of Colloid and Interface Science Gaining insight into the impact of electronic property and interface electrostatic field on ORR kinetics in alloy engineering via theoretical prognostication and experimental validation

The 20 wt% Pt3M (M = Cr, Co, Cu, Pd, Sn, and Ir) were purchased from SCI Materials Hub. This work places emphasis on the kinetics of the ORR concerning Pt3M (M = Cr, Co, Cu, Pd, Sn, and Ir) catalysts, and integrates theoretical prognostication and experimental validation to illuminate the fundamental principles of alloy engineering.


Water Electrolysis

1. International Journal of Hydrogen Energy Gold as an efficient hydrogen isotope separation catalyst in proton exchange membrane water electrolysis

The cathodic catalysts of Pt/C (20 wt%, 2–3 nm) and Au/C (20 wt%, 4–5 nm) were purchased from SCI Materials Hub.


2. Small Science Silver Compositing Boosts Water Electrolysis Activity and Durability of RuO2 in a Proton-Exchange-Membrane Water Electrolyzer

Two fiber felts (0.35 mm thickness, SCI Materials Hub) were used as the porous transport layers at both the cathode and the anode.


3. Advanced Functional Materials Hierarchical Crystalline/Amorphous Heterostructure MoNi/NiMoOx for Electrochemical Hydrogen Evolution with Industry-Level Activity and Stability

Anion-exchange membrane (FAA-3-PK-130) was obtained from SCI Materials Hub website.


Fuel Cells

1. Polymer Sub-two-micron ultrathin proton exchange membrane with reinforced mechanical strength

Gas diffusion electrode (60% Pt/C, Carbon paper) was purchased from SCI Materials Hub.


Characterization

1. Chemical Engineering Journal Electrochemical reconstitution of Prussian blue analogue for coupling furfural electro-oxidation with photo-assisted hydrogen evolution reaction

An Au nanoparticle film was deposited on the total reflecting plane of a single reflection ATR crystal (SCI Materials Hub, Wuhu, China) via sputter coater.

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