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Daan Wolters

Publications and source records attributed to Daan Wolters.

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Motion-Based Beamshape Recovery Enables Precision Nanoparticle Sizing

Label-free all-optical nanosizing approaches based on interferometric or darkfield-imaging infer size, composition, or shape from single-particle scattering signals, but these signals are inseparably coupled to the spatially non-uniform illumination profile of the imaging system. Existing normalisation strategies require directly measuring this illumination field, an approach that fails for background-free geometries, such as lightsheet-type illumination, where the field cannot be detected. Here we introduce a self-normalisation method that reconstructs the illumination profile directly from the scattering signals of many freely diffusing nanoparticles, requiring no additional hardware, calibration samples, or direct field measurement. Critically, our approach eliminates the particle-heterogeneity bias that otherwise corrupts such reconstructions, by normalising single-particle trajectories against each other in regions of spatial overlap, where distinct particles necessarily sample identical illumination and detection conditions. We validate this method for gold nanoparticles of various size in two- and three-dimensional geometries, including a 90{\deg} side-illumination configuration in which the illumination field is entirely undetectable by conventional means, and show that reconstructed profiles closely match ground-truth measurements, thus drastically reducing signal variability. Relying solely on the scattering signal already acquired for sizing, our approach is immediately compatible with existing interferometric and darkfield nanoscopy platforms and broadly extendable to other scattering or fluorescent modalities, including light-sheet microscopy.

physics.optics

Time-resolved infrared photothermal imaging: From transient observations towards the steady-state

Mid-infrared photothermal microscopy is a highly promising imaging technique that enables spatially resolved vibrational fingerprinting. The combination of infrared induced heating with optical readout at visible wavelengths provides excellent spatial resolution while retaining the spectral observations of conventional infrared imaging. Most current implementations rely on long-duration illumination periods, to ensure sufficient heating and hence large signals. However, undesirable processes such as heat-diffusion degrade spatial resolution and the interplay between heat-induced refractive index changes and sample expansion adds additional uncertainties. Fundamentally, these issues stem from the difficulties associated with separating non-equilibrium and photoacoustic contributions from purely thermal signals. Highly time-resolved observations hold great promise for addressing these issues and are imperative for enabling future imaging modalities in this exciting temporal window. Here, we provide this much needed insight by employing widefield phototransient holography to phase-resolve optical responses from pico- to tens of nanoseconds following vibrational overtone excitation. We observe rapid transient-induced phase shifts, followed by heat-induced coherent expansion and thermalisation dynamics. Our observations provide a direct link between the photoacoustic and photothermal realms, thus not only offering much-needed insight for rationally optimising these exciting technologies but also avenues towards future all-optical stiffness and super-resolution imaging modalities.

physics.optics