September 17, 2026

FCS with Zero-Mode Waveguides

From Localization to Automated Measurements

Zero-mode waveguides can extend fluorescence correlation spectroscopy toward higher fluorophore concentrations, but optical confinement alone is not enough. Practical ZMW-FCS also requires finding individual apertures, positioning the measurement accurately, recording fluorescence fluctuations, and repeating the procedure across multiple locations.
Luminosa connects ZMW imaging, positioning, and quantitative FCS within one microscopy system, with programmable access through the LumiPy Python interface.

Read also Part 1: “Zero-Mode Waveguides – Extending Single-Molecule Fluorescence to Higher Concentrations”

From Optical Confinement to a Measurement Workflow

Part 1 introduced the physical principle of zero-mode waveguides and explained how their strongly confined observation volume can extend FCS toward fluorophore concentrations that are difficult to access with conventional diffraction-limited confocal FCS.

The next question is practical: how do you move from a ZMW array to a quantitative FCS measurement at a selected individual ZMW?

This requires several connected steps: locating the array, selecting a suitable ZMW, refining the measurement position, and acquiring the fluorescence fluctuations needed for FCS analysis.

Finding and Selecting Individual ZMWs

The first challenge is navigation. The dimensions of an individual ZMW are much smaller than the overall sample area, so directly addressing a specific ZMW requires spatial information about the array.

An overview scan can provide the initial orientation and locate the relevant sample region. With Luminosa, spiral scan can be used for this broader navigation step. A subsequent confocal fluorescence image provides a more detailed view and allows individual ZMWs within the array to be resolved.

See the complete experimental setup, positioning procedure, FCS analysis, molecular brightness and occupancy results, and automated multi-ZMW measurements in the Application Note.
See the complete experimental setup, positioning procedure, FCS analysis, molecular brightness and occupancy results, and automated multi-ZMW measurements in the Application Note.

This additional spatial information is useful for more than simply finding coordinates. Fluorescence imaging can reveal the arrangement of the ZMWs and help identify suitable regions for subsequent point measurements. Missing or irregular fluorescence signals can also be recognized before time is spent on quantitative acquisition.

Imaging therefore becomes part of the FCS workflow itself. It establishes the spatial context required to move from a large sample area to a selected individual ZMW.

With Luminosa, this navigation can be connected directly to subsequent positioning and FCS measurements within the same microscope system.

Positioning the Measurement Within an Individual ZMW

Finding a ZMW in an image provides a target position, but this does not necessarily define the final position for quantitative acquisition.

ZMW apertures have subwavelength dimensions. At this scale, comparatively small lateral or axial offsets can change how the excitation and detection region overlaps with the nanostructure. Accurate positioning therefore becomes an integral part of the measurement rather than a simple preparatory step.

A practical workflow can use the position identified from fluorescence imaging as the starting point for local optimization around the selected ZMW. The lateral and axial coordinates can then be refined before the actual FCS acquisition begins.

This distinction becomes particularly relevant when measurements are repeated across an array. Simply moving to a predefined set of coordinates assumes that every target is addressed equally well. Local optimization allows the workflow to account for the actual position of each ZMW before quantitative data are recorded.

From Imaging to FCS with Luminosa

Once a suitable ZMW has been selected and the position refined, the experiment changes from spatial navigation to FCS acquisition and analysis.

FCS requires sensitive photon detection because the information is contained in temporal fluctuations of the fluorescence signal. In a two-detector configuration, the fluorescence can be split between two single-photon detectors and analyzed by cross-correlation. This approach reduces the influence of detector-specific effects such as afterpulsing on the correlation curve.

Luminosa combines these FCS capabilities with the imaging and positioning functions used earlier in the workflow. Different scanning approaches can also be selected depending on the experimental task. FLIMbee galvo scanning can provide rapid fluorescence imaging for navigation, while piezo objective scanning offers an alternative approach for addressing positions during point measurements.

The relevant aspect is the connection between these stages. A researcher can move from locating the ZMW array to selecting an individual ZMW, refining its position, and performing FCS within one platform.

Quantitative FCS can then provide parameters such as molecular occupancy, characteristic diffusion times, and molecular brightness. In the context of ZMWs, these quantities are particularly useful for evaluating how fluorescence measurements behave within the strongly confined observation region.

Representative FCS measurement in an individual ZMW. Cross-correlation FCS curve and corresponding fit obtained for Alexa Fluor 647 in a ZMW (sample 2) at approximately 1 μM bulk concentration and 5 μW excitation power. The correlation curve was fitted using a 3D diffusion model including a triplet component. For this measurement, the fit yielded a shape parameter of κ = 0.9999 and a diffusion time of τD = 51.5 μs.

From Individual ZMWs to Programmable Measurements with LumiPy

For a small number of ZMWs, navigation, positioning, and FCS acquisition can be performed interactively. Arrays make the same sequence increasingly repetitive.

A multi-position experiment may require the microscope to move to a target, optimize the local position, acquire FCS data, save the measurement, and continue to the next ZMW. The individual operations are straightforward but repeating them manually across many positions increases user interaction and makes larger measurement series more cumbersome.

LumiPy provides Python access to Luminosa and allows these instrument operations to be combined into programmable workflows. Positions can be defined and addressed programmatically, measurement parameters can be set, acquisitions can be started, and results can be accessed from Python.

Automated FCS measurements across multiple ZMWs using LumiPy. Left: Automated workflow for ZMW identification, local Z and XY position optimization, and subsequent 30 s FCS acquisition at each aperture. Right: Luminosa measurement view showing multiple identified ZMW positions during automated acquisition. In this proof-of-concept experiment, FCS measurements were acquired from 88 ZMWs within approximately 85 minutes.
Automated FCS measurements across multiple ZMWs using LumiPy. Left: Automated workflow for ZMW identification, local Z and XY position optimization, and subsequent 30 s FCS acquisition at each aperture. Right: Luminosa measurement view showing multiple identified ZMW positions during automated acquisition. In this proof-of-concept experiment, FCS measurements were acquired from 88 ZMWs within approximately 85 minutes.

For ZMW-FCS, this creates a route from a manually established measurement sequence toward automated multi-position acquisition. Image-derived ZMW positions can serve as initial targets, followed by local optimization and FCS acquisition before the workflow proceeds to the next position.

The key point is that automation does not have to mean simply measuring a static coordinate list. Imaging, positioning, acquisition, and analysis steps can be connected into a measurement logic adapted to the experiment.

From Practical Workflow to Experimental Data

ZMW-FCS therefore involves more than placing a nanostructured sample into a fluorescence microscope. The optical confinement provided by the ZMW has to be connected with spatial navigation, selection of individual ZMWs, accurate positioning, single-photon detection, and quantitative FCS analysis. When measurements are extended across larger arrays, programmability becomes an additional part of the workflow.

Luminosa brings imaging, positioning, and FCS capabilities together within one microscopy system. Through its LumiPy Python interface, these functions can also be accessed programmatically to extend the workflow toward automated multi-ZMW acquisition.

Luminosa connects ZMW imaging, positioning, and quantitative FCS within one microscopy system, with programmable access through the LumiPy Python interface.
Luminosa connects ZMW imaging, positioning, and quantitative FCS within one microscopy system, with programmable access through the LumiPy Python interface.

How does this approach perform in an actual ZMW experiment?

The accompanying Application Note applies this workflow to FCS measurements with Alexa Fluor 647 in different ZMW samples and provides the corresponding experimental details and quantitative results.

Download the Application Note

See the complete experimental setup, positioning procedure, FCS analysis, molecular brightness and occupancy results, and automated multi-ZMW measurements in the Application Note.

Application Note: FCS in Zero-Mode Waveguides with Luminosa

Explore FCS measurements in zero-mode waveguides at micromolar concentrations, including molecular brightness enhancement and automated acquisition with Luminosa.

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Evangelos Sisamakis

Product Manager, PicoQuant

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September 9, 2026

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