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CompreCell 6/12

See all products by rhd instruments
5.0
(1)

Price: On Request

Description

Benefit from this highly reliable test cell for solid-state battery and solid-state electrolyte testing.

  • Designed for pressures of up to 663 MPa (12 mm piston) or 1.7 GPa (6 mm piston)
  • Broad temperature range from -40 °C to 250 °C (upper limit depends on chosen sleeve material)
  • Airtight (helium-leakage tested) concept for testing moisture- and air-sensitive samples
  • Different sleeve materials available
  • Compatible with CompreDrive, CompreFrame, and ComPrep; one of these pressure frames is required to operate the test cell

Typical applications

The CompreCell 6/12 can be used for solid-state electrochemistry starting with powders or pellets to parametrize solid electrolytes or to test solid-state batteries:

  • Pressure- and temperature-dependent investigation of a solid-state electrolyte’s conductivity
  • Cycling of solid-state batteries under active stack pressure and temperature control
  • Stripping-plating experiments under actively controlled stack pressure

Specifications

General

Applications

Solid-state battery, Solid electrolyte

Storage conditions

Storage +10 to +40 °C, Drying up to +100 °C, RH 0–80% (non-condensing), Non-corrosive atmosphere, Storage +10 to +40 °C

Dimensions

6 cm x 6 cm x 14 cm

Weight

~1.8 kg

Operating temperature

-40 °C up to +250 °C, Tmax depends on selected sleeve material

Battery testing

Max Battery Thickness

10 mm

Piston diameter

6 mm, 12 mm

Piston material

Hard metal (90% WC / 10% Co)

Max. Applied voltage

40 V (AC/DC)

O-ring material

FFKM

Max. Pressure

1.7 GPa (6 mm diam. piston), 663 MPa (12 mm diam. piston)

Sleeve material

PEEK, PEI, Al₂O₃

Airthight

Helium-leakage tested

Compression architecture

Dual piston, can be opened from one side

Product type (battery)

Solid-electrolyte test cell

Max. Applicable force

75 kN (12 mm diam. piston), 50 kN (6 mm diam. piston)

General Cells

Electrode configuration

2-electrode

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References

Scientific publications where researchers have utilized this equipment.Are you an author? Contact us to add your research.

Ionic conductivity measurements of solid state electrolytes with coin cells enabled by dry-pressed holey graphene current collectors

Coby H. Scrudder, Lopamudra Das, Jin Ho Kang, Vesselin I. Yamakov, Ji Su, Donald A. Dornbusch, Rocco P. Viggiano, Yi Lin•Frontiers in Energy Research,Volume 13 - 2025
https://doi.org/10.3389/fenrg.2025.1684653

Electrochemical and Mechanical Evolution of Sulfide-Based Solid Electrolytes: Insights from Operando XPS and Cell Pressure Measurements

Valerie Siller, Linfeng Xu, Laurent Castro, Aurélie Guéguen, Mario El Kazzi•Small,21, e08796
https://doi.org/10.1002/smll.202508796

Elucidating the Influence of Stack Pressure on Anode and Cathode Impedance of All-Solid-State Batteries via Three-Electrode Measurements

Asvitha Ramanayagam, Vanessa Miß, Simon Leier, Annalena Duncker, Simon Kirczek, Bernhard Roling•Batteries & Supercaps,2026, 9, e70315
https://doi.org/10.1002/batt.70315

Impedance Spectroscopy Analysis of Sulfide Solid Electrolyte Composites for All-Solid-State Batteries

Susana Suttor, Patrick Walke, Katarina Cicvarić, Aliaksandr S. Bandarenka•The Journal of Physical Chemistry C,2026, 130, 9, 3590–3600
https://doi.org/10.1021/acs.jpcc.5c08415

Interplay of Ionic and Electronic Properties of LPSCl with Its Micro- and Macrostructural DynamicsClick to copy article link

Sara Pacetti, Christoffer Karlsson, Emin Mijit, Marcel Drüschler, Andrea Di Cicco, Nicola Pinto, Dominic Bresser, Javad Rezvani• Get e-Alerts The Journal of Physical Chemistry C,2026, 130, 8, 3040–3049
https://doi.org/10.1021/acs.jpcc.5c06227

Using a Zero-Strain Reference Electrode to Distinguish Anode and Cathode Volume Changes in a Solid-State Battery

Mervyn Soans, Benedikt Huber, Marcel Drüschler, Dominic Bresser, Alberto Varzi, Christoffer Karlsson•dvanced Materials Interfaces,2025, e00709
https://doi.org/10.1002/admi.202500709

Spatio-Chemical Deconvolution of the LiNi0.6Co0.2Mn0.2O2/Li6PS5Cl Interphase Layer in All-Solid-State Batteries Using Combined X-ray Spectroscopic Methods

Barthélémy Lelotte, Carlos A. F. Vaz, Linfeng Xu, Camelia N. Borca, Thomas Huthwelker, Vincent Pelé, Christian Jordy, Lorenz Gubler, Mario El Kazzi•ACS Applied Materials & Interfaces,2025, 17, 9, 14645–14659
https://doi.org/10.1021/acsami.4c19857

Paper-Like 100 % Si Nanowires Electrodes Integrated with Argyrodite Li6PS5Cl Solid Electrolyte

Elena Sánchez-Ahijón, Afshin Pendashteh, Juan J. Vilatela•Batteries & Supercaps,2024, 7, e202400292
https://doi.org/10.1002/batt.202400292

Pressure-Induced Dislocations and Their Influence on Ionic Transport in Li+-Conducting Argyrodites

V. Faka, M. T. Agne, M. A. Lange, D. Daisenberger, B. Wankmiller, S. Schwarzmüller, H. Huppertz, O. Maus, B. Helm, T. Böger, J. Hartel, J. M. Gerdes, J. J. Molaison, G. Kieslich, M. R. Hansen, W. G. Zeier•Journal of the American Chemical Society,2024, 146, 2, 1710–1721
https://doi.org/10.1021/jacs.3c12323

Mechanistic insights into soft shorts in all-solid-state lithium metal batteries using a three-electrode and pressure-monitoring cell

Linfeng Xu, Jinsong Zhang, Thomas J. Schmidt, Mario El Kazzi•Journal of Energy Chemistry,117 (2026) 365–375
https://doi.org/10.1016/j.jechem.2026.02.014

Influence of oxygen distribution on the Li-ion conductivity in oxy-sulfide glasses – taking a closer look

Ramon Zimmermanns, Xianlin Luo, Anna-Lena Hansen, Marcel Sadowski, Qiang Fu, Karsten Albe, Sylvio Indris, Michael Knapp, Helmut Ehrenberg•Dalton Transactions, 2024, 53, 13348–13363
https://doi.org/10.1039/D4DT01132E

Customer Reviews

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Ramon Zimmermanns at KIT
Reviewed on June 15, 2026
Verified Purchase

I use this cell combined with a CompreDrive for the electrochemical analysis of solid electrolytes. The cell is easy to handle and the setup has proven to yield reliable and reproducable results under well defined conditions.

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