Recreate realistic reaction environments inside your TEM with integrated optical illumination, precise gas delivery, closed-loop heating beyond 1000 °C, electrical biasing, and atomic-resolution imaging to investigate light-stimulated gas–solid transformations

TEM Optical Gas Heating Sample Holder

The Hummingbird Scientific TEM Optical Gas Heating Sample Holder enables in-situ TEM and STEM imaging of light-stimulated gas–solid reactions under precisely controlled gaseous environments. Designed for researchers in photocatalysis, photoelectrochemistry, materials science, chemistry, energy conversion, environmental science, and nanotechnology, it combines integrated optical illumination, controlled gas flow, and high-temperature MEMS heating to investigate photocatalysis, semiconductor activation, plasmon-enhanced catalysis, gas sensing, photo-assisted redox reactions, and other light-driven materials processes. By correlating optical, thermal, electrical, and gaseous stimuli with atomic-resolution imaging and analytical characterization, researchers can reveal the mechanisms governing material performance, stability, and degradation under realistic operating conditions.

Hummingbird Advantages:

  • Integrated fiber-optic illumination for efficient light delivery directly to the specimen.
  • Gas flow up to 2 bar with a dedicated purge line, optional multi-channel gas delivery, and real-time exhaust gas analysis.
  • Closed-loop MEMS heating from room temperature to above 1000 °C with integrated temperature sensing.
  • Combine optical illumination, controlled gas flow, and MEMS heating within a single in-situ TEM experiment.
  • Screw-free gas-cell assembly with self-aligning windows for fast, reproducible sample loading.
  • Full compatibility with TEM, STEM, EDS, and EELS during light-stimulated in-situ gas experiments.
  • Compatible with TEM, SEM, and X-ray microscopy workflows using cross-platform microfabricated chips.
Technical Specs
1305 Series – 1+1 Channel Gas Delivery
1305 Series – Multi-Channel Gas Delivery
Pressure Range at Sample
1 to 2 bar
10⁻⁶ mbar to 2 bar
Fiber Bandwidth
100 to 2000 nm
100 to 2000 nm
Holder Gas Inlets/Outlets
1 inlet and 1 outlet on the holder
1 inlet and 1 outlet on the holder
Gas Controller Configuration
1 experimental gas and 1 inert purge gas
2–8 experimental gases, up to 1 vapor, and 1 inert purge gas
Purge Capability
Yes
Yes
Gas Analysis Capability
No
Yes
Tubing System
All metal
All metal
Heating Temperature
>1000 °C
>1000 °C
Biasing Contacts
4 contacts
4 contacts
EELS / EDS Compatible
Yes
Yes

Available For:

How it Works

The TEM Optical Gas Heating Sample Holder integrates fiber-optic illumination, a sealed environmental cell, multifunctional microfabricated MEMS chips, electrical biasing, and dedicated control hardware into a unified platform for photo-assisted in-situ TEM and STEM experiments. An optical fiber is integrated into the holder tip, delivering light directly adjacent to the gas-cell to maximize optical intensity at the specimen while minimizing transmission losses. This architecture enables efficient illumination using standard laboratory light sources while preserving high-resolution TEM/STEM imaging and analytical performance.

The specimen is enclosed within a sealed environmental cell formed by two microfabricated silicon chips with electron-transparent silicon nitride (SiN) windows. Controlled gas flow up to 2 bar, closed-loop MEMS heating beyond 1000 °C, integrated four-point temperature sensing, and electrical biasing can be applied simultaneously during imaging. Compatible MEMS chips and optional multi-channel gas delivery enable researchers to correlate optical, thermal, and electrical stimuli with atomic-scale structural and chemical evolution during in-situ gas-phase TEM experiments.

Perform in-situ TEM gas-phase experiments with integrated optical illumination, closed-loop MEMS heating beyond 1000 °C, and controlled gas flow to investigate light-stimulated gas–solid reactions.

Key Features and Capabilities

In-situ Light Exposure
In-situ Light Exposure

Illuminate photo-sensitive samples through fiber optic access during in-situ gas-cell TEM experiments

Reproducible Screw-Free Gas-Cell Assembly
Reproducible Screw-Free Gas-Cell Assembly

Achieve reproducible gas-cell assembly with self-aligning windows and a screw-free sealing design

Integrated Gas Heating
Integrated Gas Heating

Perform temperature-controlled gas-phase TEM with homogeneous MEMS heating above 1000 °C, 4-point on-chip temperature sensing, and near-drift-free imaging

Purgeable 1+1 Channel Gas Delivery System
Purgeable 1+1 Channel Gas Delivery System

Control gas pressure from high vacuum to 2 bar using one experimental gas and a dedicated purge line for reliable, repeatable gas-phase TEM experiments

Optimized for EELS and EDS
Optimized for EELS and EDS

Perform correlative spectroscopy and microscopy for detailed in-situ elemental analysis

TEM Safety & Seal Verification
TEM Safety & Seal Verification

Protect your TEM during gas-cell experiments and streamline setup with rapid high-vacuum seal checking and optical inspection

60+ In-Stock Gas-Cell TEM Chip Configurations
60+ In-Stock Gas-Cell TEM Chip Configurations

Keep experiments moving with in-stock gas-cell TEM chips designed for gas flow, heating, sample biasing, and multimodal microscopy workflows

Multi-channel Gas Delivery System
Optional add-on feature
Multi-channel Gas Delivery System

Unlock superior control of gas composition with on-the-fly mixing of up to eight gases and real-time output gas analysis

Software

Spend less time managing equipment and more time generating results. Hummingbird Connect™ integrates with microscope and laboratory software platforms to simplify experiment setup, streamline workflows, and keep your data organized from acquisition through analysis.

To help you get the most from your gas-cell holder, Hummingbird Control™ Software provides intuitive and precise control of closed loop gas heating. Together, these software solutions enable faster setup, improved reproducibility, and more efficient gas-phase TEM experiments.

Built on Engineering Excellence

Hummingbird Scientific designs, machines, assembles, tests, and services its products in-house. Our integrated engineering, machining, microfabrication, software development, applications, and service teams enable rapid prototyping and iteration, custom modifications, and direct technical support throughout the life of the instrument. This vertically integrated approach allows researchers to adapt experimental platforms to unique scientific requirements while maintaining the performance and reliability required for advanced in-situ microscopy experiments.

The TEM Optical Gas Heating Sample Holder is a direct result of these capabilities, combining controlled gas delivery, fiber-optic illumination, MEMS heating, electrical biasing, and experimental workflows into a single platform for reproducible in-situ photo-assisted gas-phase TEM experiments.

Need something unique? Our engineers can customize existing products or develop entirely new solutions to support specialized experiments and emerging research challenges.

Frequently Asked Questions

What is a TEM Optical Gas Heating Sample Holder?
What types of experiments can be performed with the TEM Optical Gas Heating Sample Holder?
What gas flow configurations are available for the TEM Optical Gas Heating Sample Holder?
How is the environmental cell assembled in the TEM Optical Gas Heating Sample Holder?
Can EDS and/or EELS be performed during in-situ experiments using the TEM Optical Gas Heating Sample Holder?
Which gases can be used with the TEM Optical Gas Heating Sample Holder?
Is the TEM Optical Gas Heating Sample Holder compatible with multimodal imaging workflows?
Hummingbird Scientific optical gas heating TEM sample holder side viewHummingbird Scientific optical gas heating TEM sample holder side view
TEM Optical Gas Heating
Technical Specs
1305 Series – 1+1 Channel Gas Delivery
1305 Series – Multi-Channel Gas Delivery
Pressure Range at Sample
1 to 2 bar
10⁻⁶ mbar to 2 bar
Fiber Bandwidth
100 to 2000 nm
100 to 2000 nm
Holder Gas Inlets/Outlets
1 inlet and 1 outlet on the holder
1 inlet and 1 outlet on the holder
Gas Controller Configuration
1 experimental gas and 1 inert purge gas
2–8 experimental gases, up to 1 vapor, and 1 inert purge gas
Purge Capability
Yes
Yes
Gas Analysis Capability
No
Yes
Tubing System
All metal
All metal
Heating Temperature
>1000 °C
>1000 °C
Biasing Contacts
4 contacts
4 contacts
EELS / EDS Compatible
Yes
Yes
Instrument Type
TEM
TEM

Available For:

Full Product Information
Product Specifications
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Multi-channel Gas Delivery System