How do structure and dynamics shape the behavior of biological and soft materials?

Hummingbird Scientific's in-situ sample holders enable real-time imaging of biological and soft materials in their native environments, revealing dynamic structural transformations and nanoscale interactions as they occur. Perform multi-modal correlative TEM, SEM, and  X-ray experiments with continuous liquid flow and optional mixing. Every Hummingbird holder is developed for performance, reproducibility, and ease of use. Scroll down to explore the types of experiments with biological and soft materials made possible by these holders.

Why Hummingbird Scientific for

Bio/Soft Materials

research? 

Studying catalytic mechanisms requires understanding how materials behave during reactions, where structure, chemistry, and performance continuously evolve. These processes must be observed under realistic reaction environments, while conventional electron microscopy is often limited to pre- or post-reaction analysis, making it difficult to capture these dynamic processes.


In-situ and operando TEM enable direct observation under working conditions. Hummingbird Scientific extends this capability with stable imaging across gas, liquid, and electrochemical environments, and experiments at up to 2 bar and above 1000 °C, allowing catalysts to be studied under realistic conditions with high reproducibility.

Real-time catalyst behavior during reactions

Observe catalyst restructuring, degradation, and active-site evolution during reactions under operando conditions, overcoming the limitations of post-reaction analysis and enabling direct identification of activity and deactivation mechanisms.

Structure–performance relationships in real time

Correlate nanoscale structure with catalytic activity and selectivity during reactions, linking morphology, composition, and oxidation state directly to performance, which are otherwise difficult to resolve without real-time observation.

Realistic reaction conditions at high temperature and controlled pressures

Study catalysts under controlled gas and liquid environments at elevated temperatures with stable imaging performance, ensuring behavior can be observed under realistic conditions rather than approximated.

  • Temperatures above 1000 °C with minimal drift
  • Controlled gas and liquid environments
  • Stable imaging without drift correction

Catalyst restructuring and phase transformations

Capture dynamic structural and chemical changes during reactions, including restructuring, phase transformations, and active-site evolution, which are often not accessible through static or ex-situ analysis.

Biomolecule-templated growth

In-situ liquid phase imaging

Read More

Biomineralization processes

Under continuous liquid flow and/or mixing

Read More

Metal-organic frameworks (MoFs) dynamics

MicroED at elevated temperatures

Read More

Characterization of biosensors

Interactions and material behavior

Read More

Cells and proteins in liquids

Live imaging of structure and dynamics

Read More

Biomaterial induced corrosion

At ambient or elevated temperatures

Read More

Microgel formation and growth

Structure and kinetics

Read More

Micelle formation and dynamics

In-situ growth kinetics

Read More

Crystal orientation mapping

X-ray linear dichroic ptychography and 4D-STEM

Read More

Which type of experiment best matches your research?

The right experimental setup depends on the question you need to answer. Use the guide below to find published examples, experimental possibilities, and the holder solutions to support them.

Biomolecule-templated growth

In-situ liquid phase imaging

Read More

Biomineralization processes

Under continuous liquid flow and/or mixing

Read More

Metal-organic frameworks (MoFs) dynamics

MicroED at elevated temperatures

Read More

Characterization of biosensors

Interactions and material behavior

Read More

Cells and proteins in liquids

Live imaging of structure and dynamics

Read More

Biomaterial induced corrosion

At ambient or elevated temperatures

Read More

Microgel formation and growth

Structure and kinetics

Read More

Micelle formation and dynamics

In-situ growth kinetics

Read More

Crystal orientation mapping

X-ray linear dichroic ptychography and 4D-STEM

Read More

Crystal orientation mapping

X-ray linear dichroic ptychography and 4D-STEM

Products and Research

Characterization of biosensors

Interactions and material behavior

Products and Research

Micelle formation and dynamics

In-situ growth kinetics

Products and Research

Microgel formation and growth

Structure and kinetics

Products and Research

Cells and proteins in liquids

Live imaging of structure and dynamics

Products and Research

Metal-organic frameworks (MoFs) dynamics

MicroED at elevated temperatures

Products and Research

Biomineralization processes

Under continuous liquid flow and/or mixing

Products and Research

Biomolecule-templated growth

In-situ liquid phase imaging

Products and Research

Biomaterial induced corrosion

At ambient or elevated temperatures

Products and Research

Browse More Publications

See More Publications
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Video Spotlight

Biomineral growth and dissolution under liquid environments

Understanding how biominerals form through shape-preserving transformations—from transient amorphous precursors to crystalline phases—unlocks new routes to engineer complex architectures beyond traditional crystallographic limits. The Hummingbird Scientific liquid flow sample holder enables direct, real-time visualization of these processes across diverse liquid environments, revealing the nanoscale mechanisms that drive structure formation.

The video captures the dynamic growth and dissolution of amorphous CaCO₃ in the presence of sodium polyacrylate (PAA), revealing real-time cycles of formation, dissolution, and re-nucleation. These observations uncover distinct transformation pathways governed by additive interactions. Notably, crystalline CaCO₃ emerges during the dissolution of ACC, highlighting a coupled dissolution–recrystallization mechanism that directs phase evolution.

Hummingbird advantages

  • Stable imaging under continuous liquid flow enabling uninterrupted observation of dynamic processes.
  • Nanoscale visualization revealing transformation pathways and phase evolution in real time.

Reference: Zhaoming Liu, et al, Proc.Natl. Acad. Sci. 117, 7, 3397-3404 (2021) DOI: 10.1073/pnas.1914813117

Movie copyright © 2020 National Academy of Sciences

Compare Tool Capabilities

Choose a specimen holder based on your experimental and compatibilty needs
    TEM Nano-ManipulatorHeating- BiasingTEM TomographyBulk Liquid ElectrochemistryCryo Biasing TEM
Microscope/ TechniqueTEM version available
Microscope/ Technique
TEM Version Available
Excellent
Excellent
Excellent
Excellent
Excellent
 SEM version available
N/A
Excellent
N/A
Excellent
N/A
 X-Ray version available
N/A
Excellent
N/A
Excellent
N/A
Battery ConfigurationIndividual nanowire/nanoparticle
Excellent
Excellent
Excellent
Excellent
Excellent
 Thin film
Good
Excellent
Excellent
Good
Excellent
StimuliElectrical
Excellent
Excellent
N/A
Excellent
Excellent
 Thermal
N/A
Excellent
N/A
Excellent
Excellent
 Optical TEM version available
Good
N/A
N/A
Excellent
N/A
ImagingHigher resolution and diffraction
Excellent
Excellent
Excellent
Good
Excellent
 EDS/EELS compatibility
Excellent
Excellent
Excellent
Good
Excellent
 3D reconstruction
Good
Good
Excellent
N/A
N/A
 In-situ imaging
Excellent
Excellent
Excellent
Excellent
Excellent
 Pre-and post-mortem analysis
Good
Good
Excellent
Good
Good
 Transfer air-sensitive samples
Good
Good
Good
Excellent
N/A
Beam EffectsCompatibility with volatile electrolytes
N/A
N/A
N/A
Excellent
N/A
 Minimal beam damage
Good
Good
Good
Good
Good
Quantitative ElectrochemistryReplicate bulk measurements
Good
N/A
Excellent
Good
Good
 Image all battery components
Good
Excellent
N/A
Excellent
Excellent
 Longer cycling
Excellent
Excellent
N/A
Excellent
Excellent
TEM Nano-Manipulator
Excellent
N.A.
N.A.
Excellent
Good
Excellent
N.A.
Good
Excellent
Excellent
Good
Excellent
Good
Good
N.A.
Good
Good
Good
Excellent
TEM Tomography
Excellent
N.A.
N.A.
Excellent
Excellent
N.A.
N.A.
N.A.
Excellent
Excellent
Excellent
N.A.
Excellent
Good
N.A.
Good
N.A.
N.A.
N.A.
N.A.
N.A.
Excellent
Heating-Biasing
Excellent
Excellent
Excellent
Excellent
Excellent
Excellent
Excellent
N.A.
Excellent
Excellent
Good
Excellent
Good
Good
N.A.
Good
Excellent
Excellent
Excellent
N.A.
N.A.
Excellent
Gas-Heating
Excellent
Excellent
Excellent
Excellent
Excellent
Excellent
Excellent
Excellent
N.A.
Excellent
Good
N.A.
Excellent
Good
Bulk Liquid Electrochemistry features for Tool selector
Excellent
Excellent
Excellent
Excellent
Good
Excellent
Excellent
Excellent
Good
Good
N.A.
Excellent
Good
Excellent
Excellent
Good
Good
Excellent
Excellent
Excellent
N.A.
N.A.
Excellent
Good
N.A.
Product
Stimuli
Key Capability
Use Case
-
Heating
-
Electrical Biasing
>1000 °C, minimal drift
Gas Catalysis
-
Heating
-
Electrical Biasing
>1000 °C, minimal drift
Gas Catalysis
Product
Stimuli
Key Capability
Use Case
-
Heating
-
Electrical Biasing
>1000 °C, minimal drift
Gas Catalysis
-
Heating
-
Electrical Biasing
>1000 °C, minimal drift
Gas Catalysis
-
Electrical Biasing
-
Heating
>1000 °C, minimal drift
Gas Catalysis
Product
Stimuli
Key Capability
Use Case
-
Heating
-
Electrical Biasing
>1000 °C, minimal drift
Gas Catalysis
-
Heating
-
Electrical Biasing
>1000 °C, minimal drift
Gas Catalysis

Compare Tool Capabilities

Choose a specimen holder based on your experimental and compatibilty needs

TEM Product Guide for

Bio/Soft Materials

Experiments

Product
Stimuli
Key Capability
Use Case
-
Heating
-
Electrical Biasing
Continuous liquid flow
Reactions in flowing liquids
-
Heating
-
Electrical Biasing

SEM Product Guide for

Bio/Soft Materials

Experiments

Product
Stimuli
Key Capability
Use Case
-
Heating
-
Electrical Biasing
>1000 °C, minimal drift
Gas Catalysis
-
Heating
-
Electrical Biasing
>1000 °C, minimal drift
Gas Catalysis
-
Electrical Biasing
-
Heating
>1000 °C, minimal drift
Gas Catalysis

X-ray Product Guide for

Bio/Soft Materials

Experiments

Product
Stimuli
Key Capability
Use Case
-
Heating
-
Electrical Biasing
>1000 °C, minimal drift
Gas Catalysis
-
Heating
-
Electrical Biasing
>1000 °C, minimal drift
Gas Catalysis

Frequently Asked Questions

What is in-situ TEM in catalysis?
What is the difference between in-situ and operando TEM?
How do you study catalysts at high temperature in TEM?
Why is real-time observation important in catalysis?

Ready to discuss your experiment?

Our applications scientists can help identify the right products, experimental workflows, and published examples for your research.