CNB-12-EC-GDE-SE1
Gas Diffusion Electrochemical Cell (Solid-Electrolyte Series), Model: EC-GDE-SE Series
EC-GDE-SE Series Gas Diffusion Electrochemical Cell
A three-chamber solid-electrolyte cell series for high-purity liquid production, potential studies, flow-field development, and optical observation.
Product Overview
The EC-GDE-SE Series comprises four three-chamber solid-electrolyte electrochemical cells for high-purity aqueous liquid-product generation. Their sandwich architecture combines gas-fed electrode chambers, ion-exchange membranes and a central solid-electrolyte chamber, where ionic products recombine and are collected by flowing pure water. Available configurations support two- or three-electrode measurements, central flow-field development, optical observation, and photo-assisted reaction studies.
Key Features
Solid-Electrolyte Product Recovery
A pure-water stream collects high-purity aqueous products from the central solid-electrolyte chamber with minimal electrolyte contamination.
Three-Chamber Gas-Solid Architecture
Gas-fed chambers, ion-exchange membranes, and catalyst-loaded gas-diffusion layers create controlled gas-solid reaction interfaces.
Research-Specific Configurations
Models support two- or three-electrode testing, central flow-field development, optical observation, and photo-assisted reactions.
Typical Applications
High-Purity Liquid-Product Generation
High-purity aqueous product collection for solid-electrolyte electrolysis research.
Electrode-Potential & Mechanistic Studies
Three-electrode measurements for catalyst evaluation and reaction-mechanism studies.
Flow-Field Development & Mass-Transfer Studies
Central flow-field design for mass-transfer analysis and device optimization.
In Situ Optical & Photo-Assisted Studies
Optical access for in situ observation, photocatalysis, and photoelectrochemical studies.
Technical Specifications
| Item | Specification |
|---|---|
| Chamber structure | Three-chamber |
| Electrode system | Two-electrode (QG-20-1, -3 and -4); three-electrode (QG-20-2) |
| Anode-cathode gap | 3 mm |
| Active area | 4 cm² (20 x 20 mm, customizable) |
| Anode and cathode | Sheet-type gas diffusion electrode |
| Reference electrode | Rod-type electrode (QG-20-2 only) |
| Central-chamber design | Open chamber (QG-20-1 and -2); serpentine flow field (QG-20-3 and -4) |
| Cell body material | Ti + PEEK |
| Gas flow field | Serpentine (customizable) |
| Optical window material | Quartz (QG-20-4 only) |
Model Selection Guide
QG-20-1
The standard configuration for high-purity liquid-product generation and routine solid-electrolyte research. Its two-electrode design and open central chamber are suitable for electrolyte evaluation and device testing.

QG-20-2
For experiments requiring individual electrode-potential monitoring. A dedicated reference-electrode chamber enables three-electrode measurements for catalyst evaluation and mechanistic studies.

QG-20-3
For flow-field development and mass-transfer studies. A serpentine flow field in the central chamber supports device optimization and technology validation.

QG-20-4
For experiments requiring optical access to the cathode chamber. It combines a central serpentine flow field with a high-transmittance quartz window for in situ observation, photocatalytic studies, and photoelectrochemical experiments.

Related Published Application
High-Efficiency H₂O₂ Electrosynthesis in a Solid-Electrolyte Cell
Dong et al. used a two-electrode, three-chamber solid-electrolyte flow cell to investigate direct H₂O₂ electrosynthesis via O₂ reduction. At 2.5 V, the system operated at approximately 100 mA cm⁻² for 8 h, producing a 3400 ppm H₂O₂ solution with approximately 85% Faradaic efficiency.
Capabilities Relevant to the QG-20 Series
- Separates anode, solid-electrolyte, and cathode regions with ion-exchange membranes for selective ion transport.
- Collects central-chamber aqueous products directly via a flowing pure-water stream.
- Supports continuous electrolysis with gas-flow channels and central water flow.
Application Studies
Application studies using this model are currently underway.

Note: The referenced study used a two-electrode, three-chamber solid-electrolyte cell with a configuration comparable to the QG-20 Series. It is included solely as a related application example and does not confirm that any QG-20 Series model was used.