Contact Person : Luo Zhuan
Phone Number : 15605601921
WhatsApp : +8615605601921
July 28, 2026
An XRD Heating Cooling Stage is a precision temperature-controlled sample stage designed for in-situ X-ray diffraction (XRD) experiments. It enables researchers to investigate structural, crystallographic, and phase changes in materials under controlled heating, cooling, or thermal cycling conditions while collecting real-time XRD data.
This technology is widely used in materials science, semiconductors, batteries, ceramics, metallurgy, polymers, catalysts, and nanotechnology.
Wide temperature range from cryogenic to high temperatures
High-precision PID temperature control
Rapid heating and cooling rates
Excellent temperature stability
Real-time in-situ XRD measurements
Programmable temperature profiles
Optional vacuum and controlled atmosphere operation
Compatible with major XRD diffractometer systems
Easy software integration and automation
| Model | Temperature Range |
|---|---|
| Peltier XRD Stage | -40°C to +150°C |
| Standard Heating Cooling Stage | -196°C to +600°C |
| High-Temperature XRD Stage | Room Temperature to 1000°C |
| Ultra High-Temperature Stage | Room Temperature to 1500°C |
Lithium-ion batteries
Solid-state batteries
Sodium-ion batteries
Cathode and anode materials
Study:
Phase transformation
Crystal structure evolution
Thermal stability
Charge/discharge mechanisms
Silicon (Si)
Silicon Carbide (SiC)
Gallium Nitride (GaN)
Thin-film materials
Study:
Thermal expansion
Lattice strain
Crystal orientation
Stress analysis
Sintering behavior
Phase evolution
High-temperature stability
Crystal growth
Phase transformation
Heat treatment
Recrystallization
Oxidation behavior
Crystallization
Melting behavior
Glass transition
Thermal degradation
| Parameter | Specification |
|---|---|
| Temperature Range | -196°C to 1500°C (model dependent) |
| Temperature Accuracy | ±0.1°C |
| Temperature Stability | ±0.1°C |
| Heating Rate | 1–100°C/min |
| Cooling Method | Peltier or Liquid Nitrogen |
| Atmosphere | Air, Nitrogen, Argon, Vacuum |
| Sample Size | Ø5–25 mm |
| Control Mode | PID Programmable Temperature Control |
Observe structural changes during thermal processes
Monitor real-time phase transitions
Improve understanding of material performance
Simulate actual operating environments
Obtain highly accurate diffraction data under controlled temperatures
Enhance research efficiency and experimental repeatability
Advanced Materials
Energy Storage Materials
Semiconductor Devices
Photovoltaic Materials
Catalysts
Functional Ceramics
Aerospace Materials
Biomedical Materials
Nanomaterials
Powder Metallurgy
The XRD Heating Cooling Stage can be integrated with most commercial X-ray diffractometers, including systems from:
Bruker
Rigaku
Malvern Panalytical
Thermo Fisher Scientific
STOE
Shimadzu
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