Carbon-Ukraine - Equipment Manufacturing

Etching Reactor for MXene synthesis (acidic etching of MAX-phase powders), productivity up to 100 g per batch

Our Ukrainian partner Materials Research Centre (MRC) offers manufacturing of Etching Reactor for MXene synthesis.

Our partners from MRC (Kiev, Ukraine) design and manufacture laboratory reactors for stable MXene synthesis with controlled synthesis parameters, that allows to obtain up to relatively big quantity of MXene per batch ( up to 20-100g). Even relatively exotic MXenes can be manufactured in tens of grams per batch in laboratory environments, which is already a large amount for any nanomaterial. The ability to scale up MXene synthesis allows for rapid testing in a variety of fields, where large quantities are needed. Synthesis of even 50–100 g batches of MXene  provides the opportunity for commercial production of, for example, MXene inks for printing electronic devices and many others.

MRC mission is technology development, design and manufacturing of specialized laboratory equipment for different research needs. Our staff includes engineers trained in design, manufacturing, as well as nanotechnology, chemistry, electrochemistry, and materials science. We can help you to develop solutions for your needs within a wide range of materials and equipment for their manufacturing.

ETCHING REACTOR FOR ACID ETCHING OF MAX-PHASE POWDERS, PRODUCTIVITY  UP to 100 g / DAY

While most nanomaterials are only available in “nano” quantities, research team of professor Yury Gogotsi  in Drexel Nanomaterials Institute, Drexel Universuty (USA)  can make in their lab as much as 100 grams of MXene at a time, using a reactor developed with the Materials Research Center in Ukraine.

The reactor with controlled feed rate and temperature allows rapid optimization of processing for your specific needs, and our engineering and sales team is always available to answer your questions.

Etching reactor with computer control system has the following advantages:

– automatically controlled cooling system for keeping stable temperature

– additional computer recording and displaying the temperature curves of the etching process

– computer control system for adjusting the rate of material feeding and mixing

– possibility to connect the supply of neutral gases through the process

– possibility to connect two monitors for operating and displaying of process parameters

– possibility to connect the control unit to laboratory/institutional computer network, monitor and operate the process parameters though intranet/internet remote computer access

 Operation

Solution for MAX-phase for etching is poured into reactor and hermetically closed by a cover, which enables a controlled and safe removal of hydrogen.

MAX-phase feeding is done at a constant rate.  To prevent deposition of material, the solution is constantly mixed. Chemical reaction of MAX-phase etching is exothermic. A water-cooled shell and feeder for material supply are designed for the temperature control.

MAX-phase etching is done following, for example, the reaction:

Ti3AlC2 + 3HF + 2H2O = AlF3 + 5/2H2 + Ti3C2(ОН)2

Hydrogen that is formed during the etching process flows into the discharge system for further utilization or is discharged. After etching, the solution is discharged for product purification from reaction products and other impurities.

 Read more about the MXene synthesis technology in our publication:

  1. E. Shuck, A. Sarycheva, M. Anayee, A. Levitt, Y. Zhu, S. Uzun, V. Balitskiy, V. Zahorodna, O. Gogotsi, and Y. Gogotsi, Scalable Synthesis of Ti3C2TxMXene. Advanced Engineering Materials22, 1901241(2020) https://doi.org/10.1002/adem.201901241

Publications about scaling up of MXene synthesis and Etching reactors:

Michel W. Barsoum, Yury Gogotsi, Removing roadblocks and opening new opportunities for MXenes, Ceramics International,Volume 49, Issue 14, Part B, 2023, Pages 24112-24122. DOI: 10.1016/j.ceramint.2022.10.051.

  1. E. Shuck, A. Sarycheva, M. Anayee, A. Levitt, Y. Zhu, S. Uzun, V. Balitskiy, V. Zahorodna, O. Gogotsi, and Y. Gogotsi, Scalable Synthesis of Ti3C2Tx MXene.Advanced Engineering Materials 22, 1901241(2020) doi: 10.1002/adem.201901241
  2. Alhabeb, K. Maleski, B. Anasori, P. Lelyukh, L. Clark, S. Sin, Y. Gogotsi, Guidelines for Synthesis and Processing of 2D Titanium Carbide (Ti3C2Tx MXene), Chemistry of Materials, 2017, 29 (18) 7633-76445.

Hossein Riazi, Srinivasa Kartik Nemani, Michael C. Grady, Babak Anasori, Masoud Soroush, Ti3C2 MXene–polymer nanocomposites and their applications, J. Mater. Chem. A, 2021,9, 8051-8098. doi: 10.1039/D0TA08023C

  1. E. Shuck and Y. Gogotsi, “Taking MXenes from the Lab to Commercial Products” Chemical Engineering Journal, vol. 401, pp. 125786, 2020

Pritishma Lakhe, Safety in Process Scale-up of MXene and Graphite Oxide Production, PhD Thesis, Texas A&M University, 2020

Fundamental Aspects and Perspectives of MXenes, Editors: Mohammad Khalid, Andrews Nirmala Grace, Arunachalam Arulraj, Arshid Numan. Series Engineering Materials, Springer International Publishing, 2022

Chao Peng, Tao Zhou, Ping Wei, et al. Photocatalysis over MXene-based hybrids: Synthesis, surface chemistry, and interfacial charge kinetics. APL Mater. 9, 070703 (2021); doi: 10.1063/5.0055711

MRC and Carbon-Ukraine offer MXene technology development, Flexible engineering design, Customized manufacturing tailored to meet your needs

MRC encourage you to learn more about the exciting possibilities we can offer you, and we look forward to partnering with you to improve your material’s synthesis and manufacturing.

To buy high quality MXenes or MAX phases from reliable MXene supplier for research needs and for further information and detailes about ordering Etching Reactor for MXene synthesis please contact us at sales@carbon.org.ua or our partners at mrc@mrc.org.ua

To get a quota with price on MXene synthesis or price on MAX phase powders please contact us at sales@carbon.org.ua

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MXenes & MAX Phase Materials

Carbon-Ukraine/ Y-Carbon LLC serves diverse customers across a variety of industries including MXene integration for energy storage, batteries and supercapacitors, electronics, smart textiles,  composites and polymer composites water treatment and biomedical sectors

MAX-PHASE, MXENE, SYNTHESIS, reactor mxene, SHS Powder Technology, SHS sintering, SHS reactor, manufacturing

MXenes and MAX Phases Manufacturer and Supplier

Carbon-Ukraine develops, manufactures and supplies advanced nanomaterials, with a primary focus on MXenes and MAX phases for research, industrial development and educational applications. We also produce porous and activated carbon materials, provide materials characterization services, and design equipment for MXene synthesis and nanostructured carbon production.

Carbon-Ukraine / Y-Carbon LLC is based in Kyiv, Ukraine, with representation in the United States through MXene Nano Tech LLC and in Poland through Nano Carbon Tech LLC. Our team includes specialists in nanotechnology, inorganic and organic chemistry, electrochemistry, materials science and powder metallurgy.

High-Quality MXenes for Research and Industrial Applications

Carbon-Ukraine is a licensed MXene partner of Drexel University and has been involved in the development and production of MXenes and MAX phases since 2011. We supply MXene materials worldwide for research, development and advanced industrial applications.

MXene Materials and Compositions

Our MXene product range includes Ti3C2, Ti2C, V2C, Nb2C, Mo2Ti2C3, V4C3, Nb4C3, Ti3CN, Mo2C, Ta4C3 and other MXene compositions.

Depending on customer requirements, MXenes can be supplied as multilayer powders, delaminated materials, aqueous dispersions, solvent-based dispersions and materials with customized surface functionalization.

Custom MXene Synthesis and Development

We provide experimental and custom MXene synthesis for research and product development. Our controllable production processes allow us to optimize MXene composition, morphology, surface chemistry and material properties for specific applications.

MAX Phase Materials and Powders

Carbon-Ukraine manufactures and supplies a wide range of MAX phases used as advanced ceramic materials and as precursors for MXene synthesis.

Available MAX Phase Compositions

Our MAX phase materials include Ti3AlC2, Ti2AlC, Ti3AlCN, V2AlC, Nb2AlC, Mo2Ti2AlC, V4AlC3, Nb4AlC3, Ta4AlC3, Mo2GaC, Mo2Ga2C and other compositions.

We provide high-quality MAX phase powders for scientific research, MXene synthesis, product development and specialized industrial applications.

Custom MAX Phase Production

In addition to standard compositions, we can develop custom MAX phase materials according to specific research and technical requirements.

MXene and MAX Phase Materials for Advanced Research

Our manufacturing process is focused on consistent quality, controlled composition and stable material properties. Reproducibility is especially important for researchers and companies working with MXenes and MAX phases in laboratory testing and product development.

Applications of MXenes and MAX Phases

Our materials can be used in energy storage, supercapacitors, batteries, electrochemistry, conductive coatings, composites, sensors, membranes and other advanced materials research applications.

Custom Nanomaterials and Technical Support

Carbon-Ukraine also develops porous carbon materials, activated carbon materials and other nanostructured materials for research and industrial applications.

Whether you need MXene powders, MAX phase materials, custom nanomaterials or technical support for a new project, our engineering and research team can help develop a material solution tailored to your requirements.

Carbon Ukraine offers for purchase MXene powder and MAX phase at low proces

Dear researchers, 

We are very glad to inform you that our laboratory in Kyiv is active and continues working on the synthesis of MAX phases and MXenes, now we synthesize the materials for all the orders and also have already some materials in stock. In spite on the hard situation in Ukraine we  have verified  logistics and now successfully deliver international orders worldwide. 

We supply  various MAX-phase materials and MXenes and also customized laboratory etching reactors fro  MXene synthesis and others related to MAX phase and MXene processing.  Please send all your enquiries and contact us for your orders by e-mail: sales@carbon.org.ua

Thank you for support Ukraine and use high quality Ukrainian  products!

 
 
 

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CARBON-UKRAINE/ Y-Carbon LLC

MAX phases and MXenes sale for research purposes

We supply at good price  MAX phase powder and MXenes, customized laboratory etching reactors for  MXene synthesis and other equipment related to MAX phase and MXene processing.  Please send all your enquiries and contact us to order MXene or MAX phase by e-mail: sales@carbon.org.ua

Due to many years of successful cooperation Carbon-Ukraine is the official MXene licensed partner of Drexel University, USA, the initial inventor of MXene materials, allowing us manufacture MXenes and MXene products in different forms (for various applications) for research and educational purposes and supply them worldwide.

Research grade high quality MAX phase powders and MXene materials from Carbon Ukraine company 

Carbon-Ukraine provides synthesis and supply various regularly available MXenes Ti3C2, Ti3CN, V2C, Ti2C, Nb2C and Mo2Ti2C3 delaminated, multilayered, MXenes in aqueous media and different solvents, specific surface functionalisation and customizable flake size. MXene scaled up synthesis is also possible, prices are affordable.

Carbon-Ukraine synthesize and supply various MAX-phasepowder with different composition for MXene synthesis. MAX phases Ti3AlC2, Ti2AlC, V2AlC, Nb2AlC, Cr2AlC, Ti3AlCN, Mo2Ti2AlC3, Mo2GaC, Mo2Ga2C, V4AlC3, Nb4AlC3, Cr2TiAlC2, Mo3VAlC3, Ta4AlC3 are available or possible to synthesize on specific customized orders. Contact us for MAX phase price and get a quota on the MAX phase of  your interest.

Carbon-Ukraine is engaged in experimental synthesis and customized manufacturing of  various materials for scientific research needs. We synthesized MAX-phase and MXene materials for more than 300 universities, research laboratories and  companies from different countries within joint R&D projects and customized orders.

Also we are open for cooperarion with academy and industrial partners, and will be glad to take part in international research and development projects.We have many successfully completed Horizon 2020 European projects, US DoE projects and are open for all r&d collaborations.

MAX-Phases

Our MAX-phase materials have specific composition intended for obtaining MXene. Available particle size:  ≤ 200, ≤100, ≤ 40 microns or bulk material. MAX-phases solid samples or targets are also available. 

MXenes 

MXene materials can be produced and supplied in the following forms:

  • MXene paste (Ti3C2, Ti3CN, V2C, Ti2C, Nb2C and Mo2Ti2C3  aqueous solutions or in organic solvents), delaminated, multilayered
  • MXene powder with a particle size distribution range from hundreds of nm up to tens of µm
  • MXene thin film deposited on a substrate
  • MXene freestanding film (3-100 microns)
  • MXene colloidal solution of delaminated single-layer or few layer MXene sheets
  • Freestanding cold-pressed discs

 

Our Ukrainian partner Materials Resaerch Centre (MRC) offers manufacturing of Etching Reactor for MXene synthesis.

To get a quota with a price on MXene or MAX phase powder or cost of MXene synthsis please contact us at sales@carbon.org.ua

Read more about the upscaled MXene synthesis technology in our recent collaborative article with Nanomaterials Group from Drexel University:

C. E. Shuck, A. Sarycheva, M. Anayee, A. Levitt, Y. Zhu, S. Uzun, V. Balitskiy, V. Zahorodna, O. Gogotsi, and Y. Gogotsi, Scalable Synthesis of Ti3C2Tx MXene. Advanced Engineering Materials 22, 1901241(2020) https://doi.org/10.1002/adem.201901241

 Carbon-Ukraine supplied high quality materials that were used for research described in the following research papers, patents and books of our customers: 

Eom, W., Shin, H., Ambade, R.B. et al. Large-scale wet-spinning of highly electroconductive MXene fibersNat Commun 11, 2825 (2020). DOI: 10.1038/s41467-020-16671-1

Gao, X., Du, X., Mathis, T.S. et al. Maximizing ion accessibility in MXene-knotted carbon nanotube composite electrodes for high-rate electrochemical energy storageNat Commun 11, 6160 (2020). DOI: 10.1038/s41467-020-19992-3

A. Sarycheva, A. Polemi, Y. Liu, K. Dandekar, B. Anasori, Y. Gogotsi, 2D titanium carbide (MXene) for wireless communicationScience Advances, vol. 4, no. 9, 2018. DOI: 10.1126/sciadv.aau0920

Jeffrey D. Cain, Amin Azizi, Kathleen Maleski, Babak Anasori, Emily C. Glazer, Paul Y. Kim, Yury Gogotsi, Brett A. Helms, Thomas P. Russell, and Alex Zettl, Sculpting Liquids with Two-Dimensional Materials: The Assembly of Ti3C2Tx MXene Sheets at Liquid–Liquid Interfaces, ACS Nano 2019 13 (11), 12385-12392. DOI: 10.1021/acsnano.9b05088

Read more MXene research papers with Carbon-Ukraine MXenes and MAX phase powders used

Self Propagating High Temperature Syntheis Reactor – SHS Reactor, customized equipment manufacturing

Our Ukrainian partner Materials Research Centre (MRC) offers manufacturing of SHS Reactor.

Our partners from MRC (Kiev, Ukraine) design and manufacture customized laboratory reactors for Self-Propagating High-Temperature Synthesis

Self-Propagating High-Temperature Synthesis (SHS), also known as combustion or autoignition synthesis, creates materials by starting an exothermic reaction among powdered reactants. It stands out for being self-sustaining—generated heat continues the synthesis without needing an external heat source. SHS is widely used in making various materials like ceramics, intermetallic compounds, and composites.

The design of a reactor for Self-Propagating High-Temperature Synthesis (SHS) is a critical aspect of ensuring the success and safety of the process. The reactor must be able to initiate and sustain the exothermic reaction while allowing for control over key parameters.

 We provide development of  SHS technologies, design and manufacturing of customized specialized equipment intended for synthesis of novel materials using non-critical raw materials as a precursor for SHS technology.

SHS reactor and its thermal model: General view of the SHS reactor; Cross-section of the reactor; Thermal model of the SHS reactor with 60 g of the reaction mixture showing the temperature field in the reactor during the combustion synthesis.

customized SHS reactor

Vorotilo, S., Shuck, C.E., Anayee, M. et al. Affordable combustion synthesis of V2AlC precursor for V2CTx MXene. Graphene and 2D mater 8, 93–105 (2023). https://doi.org/10.1007/s41127-023-00059-1

For orders please contact us at sales@carbon.org.ua