Microscopy and Microanalysis
Microscopy and Microanalysis
The Hummingbird Scientific TEM Optical Bulk Liquid Electrochemistry Sample Holder combines integrated optical illumination with true bulk liquid electrochemistry, enabling researchers to investigate light-driven electrochemical processes during in-situ TEM. A sealed liquid cell and off-chip bulk reference (e.g. Ag/AgCl) and counter electrodes (e.g. Pt) provide stable, reproducible electrochemical control that closely replicates conventional benchtop electrochemical measurements while controlled optical illumination stimulates photoresponsive materials inside the TEM.
Ideal for researchers studying photocatalysts, photoelectrochemical systems, solar energy materials, light-responsive semiconductors, electrocatalysts, and other materials whose behavior changes under optical illumination, the holder enables direct correlation of light exposure with electrochemical response, structural evolution, and dynamic interfacial processes at the nanoscale.
Understanding how light influences electrochemical behavior is critical for advancing energy conversion, catalysis, and functional materials. By combining controlled optical stimulation with benchtop-quality electrochemical performance inside the TEM, researchers can directly observe reaction pathways, phase transformations, ion transport, and degradation mechanisms in real time, providing insights that are difficult to obtain using conventional electrochemical techniques alone.

The TEM Optical Bulk Liquid Electrochemistry sample holder integrates a sealed microfluidic cell, true bulk reference electrode (RE) and counter electrode (CE) positioned off chip, and a fiber optic feedthrough to allow accurate photo-electrochemical control within the TEM. A real Ag/AgCl RE provides stable reference potentials, while the bulk CE supports consistent current flow, eliminating scan instability and drift common in on-chip 3-electrode systems. Electrolyte flows through the cell while electrochemical cycling is performed on the working electrode under direct nanoscale e-beam observation and stimulation by a light source.
This architecture decouples electrochemical performance from geometric and material limitations of on-chip microfabricated electrodes, delivering reproducible current–voltage responses with well-defined redox peaks that closely match bulk photo-electroanalytical behavior.


Illuminate photoresponsive samples with controlled optical stimulation during in-situ TEM experiments

The Hummingbird Scientific TEM Optical Bulk Liquid Electrochemistry Sample Holder integrates controlled fiber-optic illumination with true bulk liquid electrochemistry, enabling operando in-situ TEM studies of light-driven electrochemistry, photoelectrochemistry, photocatalysis, and other photoresponsive materials. Broad-band optical fibers support wavelengths from 100 to 2000 nm, with custom fiber configurations available for specialized applications. Correlate light exposure with electrochemical response, nanoscale structural evolution, and material transformations in real time.

Perform in-situ liquid-phase electrochemistry that matches benchtop performance

Unlike conventional liquid-cell TEM systems that rely on on-chip pseudo-reference electrodes, the TEM bulk liquid electrochemistry sample holder incorporates bulk off-chip reference and counter electrodes. This architecture delivers stable reference potentials, reduced signal drift, and electrochemical measurements that closely match benchtop experiments as shown in the image on the left.

Easy, reproducible liquid-cell assembly with self-aligning windows and a screw-free sealing design

Load liquid-cell TEM chips and solutions in minutes using our industry-leading ease-of-use constant-compression tip sealing mechanism. The tight-tolerance chips fit perfectly into the precision-machined tip, repeatably self-aligning the SiN viewing membranes and evenly compressing the O-rings without relying on finicky screws or alignment jigs. The precision-machined holder tip delivers consistent liquid-cell assembly, reducing setup complexity while improving experiment-to-experiment reproducibility and imaging reliability.

Image samples in continuous-flow or static liquid environments using a sealed microfluidic chip assembly

Perform in-situ liquid-phase TEM experiments under flowing or static liquid conditions while maintaining microscope safety, experimental flexibility, and reproducible imaging. The sealed microfluidic liquid-cell architecture supports a wide range of electrochemistry, catalysis, synthesis, and materials characterization applications.

Simplify cleaning with removable and upgradeable holder tips that allow user access for full tubing replacement

Clean up after your experiment with ease so you can avoid cross-contamination. The Hummingbird Scientific TEM Optical Bulk Liquid Electrochemistry Sample Holder features a removable tip, allowing access for tubing replacement, cell orientation flipping to optimize for TEM or STEM imaging, and capability upgrades.

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

The TEM Optical Bulk Liquid Electrochemistry Sample Holder supports both EDS and EELS, enabling researchers to correlate applied conditions with real-time chemical and structural changes. Optimized liquid-cell geometries maximize X-ray collection efficiency, while low-bowing membranes and small spacers help reduce liquid scattering and maintain sample stability suitable for EELS acquisition.

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

Reliable in-situ liquid electrochemistry experiments begin well before the holder enters the microscope. Hummingbird Scientific's integrated pumping and seal-checking system helps researchers verify liquid-cell integrity, reduce contamination risk, and protect microscope vacuum performance.

Keep experiments moving with in-stock liquid-cell TEM chips designed for electrochemistry, liquid flow, heating, and multimodal microscopy workflows

Hummingbird Scientific manufactures liquid-cell TEM chips in-house and maintains more than 60 standard configurations in stock for rapid delivery. Designed for in-situ TEM liquid-flow imaging, electrochemistry, and heating experiments, these chips are ready-to-use out of the box and require no additional cleaning. Multiple spacer, window, and electrode geometries as well as material options support applications including corrosion studies, battery research, and electrocatalysis, with made-to-order custom chips available for specialized experiments.

Add temperature-controlled liquid-phase TEM capabilities with homogeneous heating, precise temperature regulation, and near-drift-free in-situ imaging

The Integrated Liquid Heating system enables controlled thermal stimulation directly within the liquid cell for temperature-dependent in-situ TEM experiments. Individually calibrated microfabricated heating chips and closed-loop temperature control provide accurate, homogeneous heating up to the boiling point of your solution while maintaining stable imaging conditions.

Expand the capabilities of the TEM Optical Bulk Liquid Electrochemistry sample holder with the BioLogic SP-200 potentiostat for quantitative in-situ TEM electrochemistry

The BioLogic SP-200 Potentiostat extends the capabilities of the TEM Optical Bulk Liquid Electrochemistry Sample Holder by enabling quantitative electrochemical measurements during in-situ TEM and STEM imaging. Combined with Hummingbird Scientific's off-chip bulk reference and counter electrodes, the system replicates conventional benchtop electrochemical measurements while simultaneously capturing nanoscale structural evolution. It supports a wide range of electrochemical techniques, including cyclic voltammetry, chronoamperometry, chronopotentiometry, and battery charge–discharge studies, allowing direct correlation of electrochemical performance with real-time imaging.
In-situ TEM video showing hydrogen bubble formation on a MoS2 working electrode formed by white light-stimulated water splitting during the hydrogen evolution reaction (HER).
Operando optical imaging of photocatalytic hydrogen evolution on MoS₂ in liquid
The Hummingbird Scientific TEM Optical Bulk Liquid Electrochemistry Sample Holder enabled direct optical illumination of hydrogen evolution during photocatalytic water splitting in a liquid environment. A MoS₂-based working electrode immersed in water is illuminated with white light during operando electrochemical measurements. Gas bubble formation is observed at the active electrode surface, providing a visual indication of hydrogen generation during the hydrogen evolution reaction (HER).
Hummingbird Advantages
Reference: Hummingbird Scientific internal data in collaboration with Deep Jariwala and Eric Stach, University of Pennsylvania
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 liquid-cell holder, Hummingbird Control Software provides intuitive and precise control of closed loop liquid heating. Together, these software solutions enable faster setup, improved reproducibility, and more efficient liquid-phase and electrochemical TEM experiments.
Hummingbird Scientific designs, machines, assembles, tests, and services its products in-house. Our integrated engineering, machining, microfabrication, software development, and applications teams enable rapid product development, 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 Bulk Liquid Electrochemistry Sample Holder is a direct result of these capabilities, enabling reproducible true bulk electrochemical measurements combined with in-situ light stimulation and nanoscale imaging.
Need something unique? Our engineers can customize existing products or develop entirely new solutions to support specialized experiments and emerging research challenges.
An optical bulk electrochemistry TEM sample holder combines integrated optical illumination with true bulk liquid electrochemistry, enabling researchers to investigate light-driven electrochemical processes during real-time in-situ TEM experiments in an enclosed liquid cell. Off-chip bulk reference and counter electrodes reproduce conventional benchtop three-electrode electrochemical measurements while controlled optical stimulation reveals how light influences electrochemical behavior and nanoscale material transformations.
Unlike conventional liquid-cell TEM systems that rely on on-chip electrode architectures prone to parasitic currents, electrode degradation, and unstable reference potentials, the Hummingbird Scientific TEM Optical Bulk Liquid Electrochemistry Sample Holder combines dedicated off-chip bulk reference and counter electrodes with integrated optical illumination. This enables stable, reproducible benchtop-quality three-electrode electrochemical measurements while correlating light exposure with electrochemical response, nanoscale structural evolution, and material transformations during in-situ TEM experiments.
The Hummingbird Scientific TEM Optical Bulk Liquid Electrochemistry Sample Holder enables a broad range of light-driven in-situ TEM experiments by combining integrated optical illumination with true bulk liquid electrochemistry. Supported techniques include photoelectrochemistry, photocatalysis, cyclic voltammetry, and chronoamperometry. Researchers can investigate photoresponsive materials including photocatalysts, solar energy materials, light-responsive semiconductors, battery materials, and electrocatalysts while studying energy conversion, energy storage, corrosion, and catalytic processes. The holder allows direct correlation of light exposure with electrochemical response, reaction kinetics, and nanoscale structural evolution in real time.
The key difference is the combination of integrated optical illumination with true bulk liquid electrochemistry. Rather than relying solely on on-chip electrodes, the Hummingbird Scientific TEM Optical Bulk Liquid Electrochemistry Sample Holder uses dedicated off-chip bulk reference and counter electrodes to deliver stable three-electrode measurements while enabling direct correlation of light exposure with electrochemical response, reaction kinetics, and nanoscale structural evolution. Read more in the comparison table above.
Hummingbird Control™ provides intuitive control and monitoring of experiment parameters such as temperature, biasing voltage, current, etc. during in-situ TEM electrochemistry experiments. Researchers can configure operating parameters, run controlled experimental profiles, monitor system behavior in real time, and record time-resolved data for accurate analysis and reproducible workflows.
For advanced electrochemical techniques such as cyclic voltammetry, chronoamperometry, and high-sensitivity current measurements, dedicated potentiostat software—such as EC-Lab® for BioLogic® potentiostats—is used to control the electrochemical experiment and acquire measurement data.
Hummingbird Connect™ complements these workflows by consolidating holder parameters, microscope settings and metadata, TEM images and movies, and measurement data from third-party software into a single, unified platform. This integrated workflow helps researchers organize experiments, correlate imaging with experimental conditions, improve reproducibility, and maintain comprehensive records of in-situ TEM electrochemistry studies.
The TEM Optical Bulk Liquid Electrochemistry Sample Holder is designed to support a wide range of standard bulk electrochemical reference and counter electrodes. Available reference electrodes include Ag/AgCl and other custom reference electrode configurations, while counter electrodes can be fabricated from materials such as platinum, gold, graphite, or other chemically compatible conductors. Because the holder uses off-chip bulk electrodes rather than integrated on-chip pseudo-reference electrodes, researchers can select electrode materials that best match their electrolyte chemistry and experimental requirements, enabling more accurate and reproducible in-situ electrochemical measurements.
Yes. The TEM Optical Bulk Liquid Electrochemistry Sample Holder supports both EDS and EELS during in-situ experiments. Its EDS-optimized liquid cell design maximizes X-ray collection efficiency for reliable elemental analysis and mapping. There will always be increased background signature in the EELS signal due to the liquid layer, but the combination of our thinnest microfludic liquid spacers and extreme sample stability enables high-quality EELS measurements to be acquired. Together, these capabilities allow researchers to correlate real-time structural changes with compositional and chemical information during dynamic electrochemical processes.


