Advanced GDE Flow Cell

Advanced GDE Flow Cell

Brand: Ossila
SKU: C2052C1
4335.00 USD In stock Buy at Merchant

Compact Advanced Flow Cell with High Current Density Reduce the ionic path length and lower ohmic resistance with a narrower channel Specifications | In the Box | Gallery | Literature | Related Products | Technical Support A highly specialized electrochemical device that creates a dynamic three-phase boundary, where gas reactant, liquid electrolyte, and solid catalyst meet and react at the interface of a porous, gas-permeable working electrode. GDE cells overcome the limitations of gas solubility in liquid electrolytes by feeding gaseous reactants directly to the catalyst surface, substantially increasing reaction efficiency and achievable current density. The advanced cell has a narrower membrane channel between the cathode and anode chambers compared to our standard cell. This reduces the ionic path length through the catholyte, lowering ohmic resistance and supporting operational current densities above 200–400 mA/cm2.A continuously circulating liquid electrolyte chamber removes reaction products in real time and suppresses competing hydrogen evolution. The advanced GDE flow cell can be used for a wide range of standard experiments, including CO2RR, NRR and ORR. Additionally, it is particularly useful if you are scaling your experiments towards industrially relevant current densities. Aqueous Flow Cells Continuous liquid products removal Industrial Current Densities Operational current densities above 200-400 mA/cm2 Three-phase Boundary Design Preventing mass-transport limitations Expert Support From in-house scientists & our customer care team Specifications Cathode and Anode Field Plate/ Chamber Material Titanium, TA2 (with serpent flow fields) Cathode and Anode Field Plate/ Chamber Dimensions 60 mm x 60 mm x 19 mm (H x W x T) GDE Working Area S-shaped, 1 cm x 1 cm, 1.5 mm width and depth Catholyte Chamber Material PEEK (1 cm x 1 cm window, 2 mm depth) Spacing Between Cathode and Anode Chambers < 2.5 mm Reference Electrode Ag/AgCl (⌀ 4mm) Gaskets FKM and PTFE (52 mm x 52 mm, see thickness and window sizes below) FKM Gasket Thickness (15 mm x 15 mm window) 0.2 mm, 0.3 mm, 0.8 mm, 1.0 mm FKM Gasket Thickness (10 mm x 10 mm window) 0.2 mm PTFE Gasket Thickness (15 mm x 15 mm window) 0.2 mm, 0.25 mm Advanced gas diffusion electrode cell dimensions Note: The flow cell can also be used as a zero-gap MEA electrolyzer once the flow field is removed. What is a Gas Diffusion Electrode? The GDE itself is built from three functional layers that together support a stable solid-liquid-gas three-phase boundary: The porous gas diffusion layer, typically carbon paper, carbon cloth, or metal mesh, acts as the mechanical and electrical backbone of the electrode and lets reactant gas through while keeping liquid electrolyte out. A thin microporous layer, typically made from carbon black nanoparticles mixed with a hydrophobic polymer such as PTFE, prevents the liquid electrolyte from flooding the gas pores. The catalyst layer, a dispersed layer of catalyst nanoparticles with an ionomer or binder microporous layer. Our Standard GDE flow cell can accommodate many suitable GDEs, with a working area of 1 cm x 1 cm. In the Box* Advanced gas diffusion electrode cell assembly Titanium cathode/anode chambers PEEK chamber Gaskets (PTFE & FKM) PTFE tube Tube cutter Contact collector leads Copper tape PTFE Gas & electrode stoppers Gas & electrode secure screws Assorted O-rings Screws & washers Gas locks PTFE tape Ag/AgCl (⌀4 mm) reference electrode *GDE and membranes are not included in the original package and need to be purchased separately. Product Gallery Previous Next Literature Y. Wu et al. (2024), Insights into electrolyte flooding in flexible gas diffusion electrodes for CO2 electrolysis: from mechanisms to effective mitigation strategies, J. Mater. Chem. A, 12, 14206-14228; DOI: 10.1039/D4TA01994F. T. Silva et al. (2025), Boosting New Electrochemical Reactor Designs to Improve the Performance in H2O2 Production Using Gas Diffusion Electrodes, ACS Sustainable Chem. Eng., 13 (8), 3172–3182; DOI: 10.1021/acssuschemeng.4c08826. G. Chen et al. (2025), Engineering Flow-Through Hollow Fiber Gas-Diffusion Electrodes for Unlocking High-Rate Gas-Phase Electrochemical Conversion, Adv. Mater., 37 (28), 2420391; DOI: 10.1002/adma.202420391.. Z. Chen et al. (2025), Electrochemical Cell Designs for Efficient Carbon Dioxide Reduction and Water Electrolysis: Status and Perspectives, Adv. Mater., 37 (33), 2505287, DOI: 10.1002/adma.202505287. A. Soni et al. (2026), Accelerated optimization of gas diffusion electrodes for CO2 electrolyzers, Matter, 9 (2), 102519; DOI: 10.1016/j.matt.2025.102519. H. Choi et al. (2025), Boron and Nitrogen Bridged Mn Single-Atom Catalyst for Highly Efficient Nitrogen Electroreduction to Ammonia, Small, 21 (47), e07387; DOI: 10.1002/smll.202507387. View Literature and Reviews Related Products [[collection handle="flow-cells" limit="5"]] GDE Flow Cells MEA Electrolyzers Spectro- electrochemical Cells

Specifications
S-channel Size
1 cm x 1 cm
Variants (1)
  • 1 cm x 1 cm — 4335.00 USD — In stock

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