Reveal how gas composition and temperature influence surface reactions using precise gas delivery, closed-loop MEMS heating above 1000 °C, and in-situ X-ray microscopy and spectroscopy

Controlled Gas Environment for In-Situ X-ray Microscopy and Spectroscopy

The X-ray Gas Heating Sample Holder enables in-situ X-ray microscopy and spectroscopy of dynamic gas–solid reactions under controlled environmental conditions. A sealed environmental cell with X-ray transparent silicon nitride (SiN) windows isolates the reactive gas environment from the microscope environment while supporting gas flow up to 2 bar and closed-loop MEMS heating above 1000 °C. A precision-engineered, screw-free loading and sealing mechanism enables fast, reproducible sample loading and automatic window alignment. Optimized holder geometry and a low thermal mass MEMS microheater provide stable sample positioning during high-temperature operando experiments. The platform supports compatible microfabricated chips for MEMS heating and electrical biasing, with optional multi-channel gas delivery for controlled gas mixing and advanced in-situ X-ray studies.

Built for Advanced Gas-Phase X-ray Research

Designed for researchers in materials science, chemistry, catalysis, energy storage, environmental science, and nanotechnology, the platform enables in-situ investigation of heterogeneous catalyst performance, oxidation and corrosion, thin-film growth and degradation, nanoparticle evolution, temperature-dependent reactions, redox processes, and gas–solid interfacial transformations under controlled gaseous environments using X-ray microscopy and spectroscopy.

Reveal the Mechanisms Behind Gas–Solid Reactions

Gas–solid reactions often involve dynamic structural and chemical transformations that determine material performance but are difficult to capture with conventional techniques. The holder is optimized for versatilty in a wide array of high-resolution X-ray synchrotron beamline endstation configurations wherein multiple unique detectors including scattered and transmission are oriented around the sample stage inside of a high-vacuum chamber. By combining controlled gas composition and pressure with closed-loop MEMS heating and optional electrical biasing, the holder allows correlation of structural evolution, chemical changes, and applied stimuli to reveal the reaction pathways and mechanisms governing material performance, stability, and degradation.

X-ray Gas Heating Sample Holder

Hummingbird Advantages:

  • Features screw-free liquid-cell assembly with self-aligning windows for fast, reproducible sample loading.
  • Perform experiments with gas flow up to 2 bar and a dedicated purge line for rapid contamination-free experimental gas switching.
  • Observe high-temperature gas-phase material transformations with closed-loop MEMS heating above 1000 °C and on-chip temperature sensing.
  • Integrates seamlessly with your X-ray microscope or beamline using custom-fitted stage hardware and user-replaceable gas tubing for easy maintenance.
  • Choose from a broad range of microfabricated chips with multiple heater configurations, window dimensions, and electrode materials to match your experiment.
  • Compatible with TEM, SEM, and X-ray microscopy workflows using cross-platform microfabricated chips.
  • Support diverse applications including catalysis, corrosion, nanoparticle dynamics, thin-film growth, redox reactions, and high-temperature materials research.

Technical Specs
1300 series – X-ray
Pressure Range at Sample
1 to 2 bar
Holder Gas Inlets/Outlets
1 inlet and 1 outlet on the holder
Gas Controller Configuration
1 experimental gas and 1 inert purge gas
Purge Capability
Yes
Gas Analysis Capability
No
Heating Temperature
>1000 °C
Biasing Contacts
4 contacts
Beamline Compatibility
Custom integration possible for all endstation chambers, optimized for high-resolution XAS, STXM, and ptychography beamlines where high vacuum chambers are required

How it Works

The X-ray Gas Heating Sample Holder integrates a sealed environmental cell, metal & PEEKsil gas delivery tubing, multifunctional microfabricated chips, electrical biasing connections, and dedicated control hardware into a versatile platform for in-situ gas-phase X-ray microscopy and spectroscopy. The environmental cell is formed by two microfabricated silicon chips with X-ray transparent silicon nitride (SiN) windows. A sample is loaded onto one of the chips before the two chips are sealed together, creating a controlled gas environment around the specimen that remains isolated from the microscope environment.

A precision-engineered, screw-free loading and sealing mechanism enables fast, reproducible sample loading and automatic alignment of the SiN windows. Controlled gas flow is delivered through the sealed environmental cell at pressures up to 2 bar using Hummingbird Scientific's gas delivery systems, with a dedicated purge line for rapid contamination-free experimental gas switching. Optimized holder geometry and a low thermal mass MEMS microheater provide stable sample positioning during in-situ experiments with closed-loop heating above 1000 °C and integrated 4-point on-chip temperature sensing.

Compatible microfabricated chips for MEMS heating and electrical biasing enable thermal and electrical stimuli to be applied during controlled gas-phase experiments, allowing researchers to observe gas-induced structural transformations, chemical evolution, catalyst activation, oxidation, phase transformations, and degradation processes in real time under realistic reaction environments.

Key Features and Capabilities

Reproducible Screw-Free Gas-Cell Assembly

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

Integrated Gas Heating

Perform temperature-controlled gas-phase X-ray microscopy and spectroscopy with homogeneous MEMS heating above 1000 °C, 4-point on-chip temperature sensing, and near-drift-free performance

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 X-ray microscopy and spectroscopy experiments

Custom X-ray Microscope Integration

Configure the holder for seamless integration with synchrotron beamlines and laboratory X-ray microscopy systems

Multimodal Imaging

Perform correlative gas-phase microscopy across TEM, SEM, and synchrotron X-ray platforms

Vacuum Safety & Seal Verification

Protect your X-ray microscope's vacuum chamber during gas-cell experiments and streamline experimental workflows with rapid high-vacuum seal checking

60+ In-Stock Gas-Cell X-ray Chip Configurations

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

Featured Research

Operando X-ray microscopy of facet-dependent Cu₂O photocatalysis during CO₂ reduction

The Hummingbird Scientific X-ray Gas Heating sample holder enabled correlative operando X-ray microscopy and environmental TEM measurements of individual Cu2O photocatalyst particles under realistic CO2/H2O reaction conditions. Using a gas-flow nanoreactor with optical illumination, researchers directly monitored chemical-state changes and structural dynamics on specific crystal facets during photocatalytic CO2 reduction. The platform revealed that Cu2O (110) facets actively adsorb and reduce CO2 to methanol, while (100) facets remain largely inactive. Combined X-ray spectroscopy, EELS, and diffraction measurements showed reversible Cu(I)/Cu(II) redox cycling and lattice expansion during CO2 adsorption, providing direct insight into the active sites responsible for highly selective solar-driven methanol production.

Reference: Yimin A. Wu, et al. Nature Energy (2019). DOI: 10.1038/s41560-019-0490-3

Copyright © 2019, This is a U.S. government work and not under copyright protection in the U.S.; foreign copyright protection may apply

High Impact Publications

Explore research publications featuring the Hummingbird Scientific X-ray Gas Heating Sample Holder and discover how researchers are applying in-situ X-ray microscopy and spectroscopy to study dynamic processes in controlled gaseous environments.

An ultrahigh-resolution soft x-ray microscope for quantitative analysis of chemically heterogeneous nanomaterials

David A. Shapiro, Sergey Babin, Richard S. Celestre, Weilun Chao, Raymond P. Conley, Peter Denes, Bjoern Enders, Pablo Enfedaque, Susan James, John M. Joseph, Harinarayan Krishnan, Stefano Marchesini, Krishna Muriki, Kasra Nowrouzi, Sharon R. Oh, Howard Padmore, Tony Warwick, Lee Yang, Valeriy V. Yashchuk, Young-Sang Yu, Jiangtao Zhao

Science Advances

2020
A tailored oxide interface creates dense Pt single-atom catalysts with high catalytic activity

Mi Yoo, Young-Sang Yu, Hyunwoo Ha, Siwon Lee, Jin-Seok Choi, Sunyoung Oh, Eunji Kang, Hyuk Choi, Hyesung An, Kug-Seung Lee, Jeong Young Park, Richard Celestre, Matthew A. Marcus, Kasra Nowrouzi, Doug Taube, David A. Shapiro, WooChul Jung, Chunjoong Kim, Hyun You Kim

Energy & Environmental Science

2020

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 SEM experiments.

Built on Engineering Excellence

Hummingbird Scientific designs, machines, assembles, tests, and services its products in-house. Our integrated engineering, machining, microfabrication, software development, and applications 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 X-ray Gas Heating Sample Holder is a direct result of these capabilities, integrating controlled gas delivery, MEMS heating, and experimental workflows into a single platform for reproducible in-situ gas-phase X-ray 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 an X-ray Gas Heating Sample Holder?
What types of experiments can be performed with the X-ray Gas Heating Sample Holder?
What gas flow configurations are available for the X-ray Gas Heating Sample Holder?
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Which gases can be used with the X-ray Gas Heating Sample Holder?
Is the X-ray Gas Heating Sample Holder compatible with my X-ray microscope or synchrotron beamline?
Is the X-ray Gas Heating Sample Holder compatible with multimodal imaging workflows?
Can the X-ray Gas Heating Sample Holder be customized for specialized X-ray workflows?
X-ray Gas Heating
Technical Specs
1300 series – X-ray
Pressure Range at Sample
1 to 2 bar
Holder Gas Inlets/Outlets
1 inlet and 1 outlet on the holder
Gas Controller Configuration
1 experimental gas and 1 inert purge gas
Purge Capability
Yes
Gas Analysis Capability
No
Heating Temperature
>1000 °C
Biasing Contacts
4 contacts
Beamline Compatibility
Custom integration possible for all endstation chambers, optimized for high-resolution XAS, STXM, and ptychography beamlines where high vacuum chambers are required
Instrument Type
X-ray
Full Product Information
Product Specifications
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