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The X-ray Liquid Flow Sample Holder enables in-situ X-ray microscopy and spectroscopy of dynamic processes in controlled liquid environments. An enclosed microfluidic flow cell with X-ray transparent silicon nitride (SiN) windows isolates the liquid-phase sample from the microscope environment while supporting static or continuous flow. A precision-engineered, screw-free loading and compression-sealing mechanism ensures reproducible liquid-cell assembly and self-alignment of the imaging windows. The holder supports microfabricated chips for MEMS heating, electrical biasing, and liquid electrochemistry, with an optional dual-inlet flow configuration for in-situ reagent mixing.
Designed for researchers in materials science, chemistry, energy storage, catalysis, environmental science, and life sciences, the platform enables in-situ investigation of particle self-assembly, biomineralization, crystallization, corrosion, nanoparticle–MOF interactions, temperature-dependent reactions, electrochemistry, battery materials, and solid–liquid or liquid–liquid interfacial processes using X-ray absorption spectroscopy (XAS), (scanning) transmission X-ray microscopy ((S)TXM), and other techniques.
Continuous liquid flow, rapid solution exchange, and optional dual-inlet mixing enable in-situ investigation of reactions from their earliest stages. 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. Combined with MEMS heating, electrical biasing, and liquid electrochemistry chips, the holder allows correlation of structural, chemical, and functional evolution using X-ray microscopy and spectroscopy to reveal the mechanisms governing material transformation, interfacial reactions, and device behavior under realistic liquid conditions.

The X-ray Liquid Flow Sample Holder uses an enclosed microfluidic liquid cell to maintain a controlled liquid environment inside the X-ray microscope or beamline. The liquid cell is formed by two silicon microchips with X-ray transparent silicon nitride (SiN) windows that encapsulate a thin liquid layer while allowing X-ray microscopy and spectroscopy of dynamic processes in liquid environments.
A precision-engineered, screw-free chip loading and compression-sealing mechanism ensures reproducible liquid cell assembly and self-alignment of the imaging windows for consistent experimental performance. The holder is compatible with specialized microfabricated chips for MEMS heating, electrical biasing, and liquid electrochemistry, enabling multiple in-situ techniques on the same liquid-flow platform.
Liquid is delivered to the holder tip through replaceable flexible microfluidic tubing. The standard configuration supports both static and continuous liquid flow, while an optional dual-inlet configuration enables two independent solutions to mix immediately before the imaging region. Continuous flow refreshes the liquid environment throughout the experiment, enabling reagent exchange, removal of reaction by-products, and real-time observation of dynamic liquid-phase processes.


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

Load liquid-cell X-ray 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 X-ray spectroscopy and microscopy data reliability.

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 X-ray Liquid Flow sample holder features a removable tip, allowing access for tubing replacement, cross-compatibility with our TEM and SEM Liquid Flow holders, and capability upgrades.

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

Perform in-situ liquid-phase X-ray synchrotron experiments under flowing or static liquid conditions while maintaining beamline vacuum integrity, experimental flexibility, and reproducible analysis. The sealed microfluidic flow-cell architecture supports a wide range of electrochemistry, catalysis, synthesis, and materials analysis applications.

Correlate electrochemical, heating, and imaging data across TEM, SEM, and X-ray microscopy platforms

The X-ray Liquid Flow Sample Holder features a user-removable liquid flow tip that can be transferred directly between compatible Hummingbird Scientific TEM, SEM, and X-ray microscopy liquid-phase platforms. By preserving the assembled liquid cell and sample, researchers can perform correlative in-situ characterization across multiple imaging modalities without rebuilding the experiment. This transferable tip architecture simplifies sample handling, improves experimental consistency, and enables direct correlation of structural, morphological, chemical, and functional information from the same region of interest across complementary microscopy techniques.

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

Hummingbird Scientific works directly with researchers to configure the X-Ray Liquid Flow Sample Holder for specific synchrotron beamlines and laboratory X-ray microscopy platforms. Engineering integration can include microscope interface development, liquid cell configuration, microfluidic flow-path configuration, MEMS chip configuration, and sample holder modifications for application-specific functionality. This collaborative approach enables researchers to implement in-situ liquid flow experiments while maintaining compatibility with existing X-ray instrumentation and evolving experimental requirements.

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

Reliable in-situ liquid flow 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 performance.

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

Hummingbird Scientific manufactures liquid-cell X-ray chips in our in-house microfabrication and inspection facility and maintains more than 60 standard configurations in stock for rapid delivery. Designed for in-situ liquid-flow, electrochemistry, and heating experiments under an X-ray probe, these chips are ready-to-use out of the box and require no additional cleaning. This means your experiments will not get held up by long lead times for substrates. Multiple spacer, window, heater, 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 control to your in-situ liquid-phase X-ray synchrotron experiments with homogeneous heating, precise temperature regulation, and drift-free analysis

The Integrated Liquid Heating system enables controlled thermal stimulation directly within the X-ray liquid cell for temperature-dependent in-situ X-ray experiments. Microfabricated heating chips with calibrated sensors and closed-loop temperature control hardware and software provide accurate, homogeneous heating up to the boiling point of your solution while maintaining stable positioning underneath the beam.

Accelerate discovery with dual-flow liquid mixing for in-situ liquid phase X-ray synchrotron techniques, capturing dynamic liquid-liquid reactions with greater control and flexibility

Optional dual-flow mixing configuration introduces two independent liquid streams into a single liquid-cell, enabling researchers to trigger reactions immediately before observation with the X-ray beam and capture transient processes as they occur.

Expand the capabilities of the X-ray Liquid Flow Sample Holder with the BioLogic SP-200 potentiostat for quantitative in-situ X-ray electrochemistry

Integrate the Biologic SP-200 Potentiostat with the X-ray Liquid Flow Sample Holder to perform quantitative in-situ liquid electrochemistry during X-ray microscopy and spectroscopy. The SP-200 provides precise potentiostatic and galvanostatic control for electrochemical experiments, enabling real-time correlation of electrochemical measurements with nanoscale structural evolution. Compatible with Hummingbird Scientific liquid electrochemistry chips, it supports a wide range of techniques including cyclic voltammetry, chronoamperometry, chronopotentiometry, and battery charge–discharge studies.

Conventional (a) and (b) and ptychographic (c) and (d) spectromicroscopy of LixFePO4 microplatelets. Point spectra from conventional scanning (dashed lines) and ptychographic modes(dotted lines with circles) are shown in (e). f-g) Heating experiment showing the redistribution of chemical components when the sample is heated from f) room temperature to g) 300°C.
Chemical mapping of LiFePO₄ cathode nanoparticles during in-situ heating by soft X-ray spectromicroscopy
The Hummingbird Scientific X-ray Liquid Flow sample holder enabled in-situ soft X-ray spectromicroscopy of LiXFePO4 battery cathode nanoplatelets under liquid-environment conditions during heating from room temperature to 300 °C. Combining high-resolution X-ray ptychography with scanning X-ray microscopy, researchers generated chemical maps that distinguished LiFePO4 and FePO4 phases within individual particles before and after thermal treatment. The holder’s liquid-cell architecture and integrated heating capability allowed direct correlation of nanoscale morphology with chemical composition, revealing spatially heterogeneous phase transformations that would be difficult to detect using bulk measurements. The work highlights the power of operando X-ray imaging for tracking temperature-driven chemical evolution in complex nanomaterials.
Reference: David A. Shapiro, et al. Science Advances (2020). DOI: 10.1126/sciadv.abc4904
Copyright © 2020 The Authors. Distributed under the Creative Commons Attribution-NonCommercial 4.0 International License (CC BY-NC4.0).
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 X-ray 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 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 Liquid Flow Sample Holder is a direct result of these capabilities, delivering a fully integrated platform that combines the sample holder, fluidics, control hardware, and experimental workflow. Designed to overcome the challenges of performing liquid-cell X-ray experiments in high-vacuum beamline environments, it enables realistic liquid-phase studies with greater confidence. The result is faster setup, lower experimental risk, and more productive use of valuable synchrotron beamtime.
Need something unique? Our engineers can customize existing products or develop entirely new solutions to support specialized experiments and emerging research challenges.
The X-ray Liquid Flow Sample Holder is an in-situ sample holder that uses microfabricated chips to create a sealed microfluidic liquid cell for X-ray microscopy and spectroscopy experiments. It maintains a controlled liquid environment under static or continuous liquid flow and supports compatible chips for MEMS heating, electrical biasing, and liquid electrochemistry, enabling in-situ investigation of dynamic structural, chemical, and electrochemical processes in realistic liquid environments.
The X-ray Liquid Flow Sample Holder supports a wide range of in-situ X-ray microscopy and spectroscopy experiments, including particle self-assembly, nanoparticle nucleation and growth, crystallization, corrosion, catalysis, electrochemical reactions, biomineralization, battery materials research, and solid–liquid or liquid–liquid interfacial studies. Compatible microfabricated chips further enable MEMS heating, electrical biasing, and liquid electrochemistry, allowing researchers to correlate structural, chemical, and functional evolution with thermal, electrical, and electrochemical stimuli in real time.
The X-ray Liquid Flow Sample Holder supports both static and continuous-flow operation using its standard single-inlet configuration. An optional dual-inlet flow configuration allows two independent solutions to be introduced and mixed immediately before the imaging region, enabling controlled reagent mixing and in-situ investigation of reaction initiation. These configurations provide the flexibility to perform a wide range of in-situ X-ray microscopy and spectroscopy experiments, from long-term studies of stable systems to dynamic investigations of rapidly evolving processes.
Yes. The X-ray Liquid Flow Sample Holder features a user-removable liquid-flow tip that can be transferred directly between Hummingbird Scientific's X-ray microscopy, TEM, and SEM liquid-phase platforms. This unique capability allows researchers to examine the same sample and liquid cell using complementary synchrotron X-ray, electron microscopy, and spectroscopy techniques without rebuilding the experiment, simplifying sample transfer and enabling direct correlation of structural, chemical, morphological, and functional information across multiple instruments.
The X-ray Liquid Flow Sample Holder features a precision-engineered, screw-free chip loading and compression-sealing mechanism that enables fast, reproducible liquid-cell assembly. During loading, the mechanism automatically aligns the silicon nitride (SiN) windows and establishes on-chip electrical connections with the holder, eliminating manual alignment and electrical contact setup. This streamlined design ensures consistent liquid-cell geometry, reduces setup time, minimizes user variability, and delivers reliable, repeatable performance across synchrotron X-ray experiments.
The X-ray Liquid Flow Sample Holder is supplied with a microfluidic liquid delivery system for precise control of liquid flow during in-situ X-ray microscopy and spectroscopy experiments. Both flow rate-controlled and pressure-controlled systems are available to accommodate different experimental requirements. Operation of the liquid delivery system is covered as part of the holder training.
The X-ray Liquid Flow Sample Holder is custom integrated for compatibility with virtually all synchrotron X-ray microscopy and spectroscopy end stations. Final compatibility depends on the specific microscope or beamline configuration, holder interface, sample environment, experimental geometry, and measurement requirements, ensuring an optimized configuration for each instrument and application. Our standard design is optimized for high-resolution synchrotron XAS, STXM, and X-ray ptychography beamlines, where the enclosed liquid cell must be mounted in a vacuum chamber.
Yes. Hummingbird Scientific supports custom integration and workflow-specific modifications for the X-ray Liquid Flow Sample Holder, including holder interfaces, microfluidic chips, flow-cell configurations, window and spacer geometries, heating and electrical biasing integration, and beamline- or laboratory X-ray microscope-specific requirements.

