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Michael P. M. Jank

Publications and source records attributed to Michael P. M. Jank.

3 recordsLinked to original sources

Stretch-free, shape-induced 3D Island-Bridge Networks for flexible TFTs on Silicon Planar Technology verified through Bending and Scalability to 9x9 Matrix

This study presents a CMOS-compatible, fully integrated three-dimensional island-bridge concept for flexible electronics on silicon planar technology. By embedding metal bridges within trenches in a polyimide-passivated island matrix, the approach localizes mechanical stress to the bridges whereby active components on the islands are protected from mechanical stress, enabling high-performance thin-film transistors (TFTs) on flexible substrates. A concave, arc-shape forming fill in trenches between the islands and backside etching yield freestanding 3D bridges. Numerical simulations to determine the minimum bending radius reveal a characteristic stress distribution in the bridges during bending, with peak stresses at the bridge-island transitions. Variation of trench depth modulates von Mises stress, identifying design parameters for reliability. Experimental validation demonstrates TFT operation under bending, with stable threshold voltage, subthreshold swing, and saturation mobility across a range of bending radii; broader bridges exhibit enhanced mechanical robustness. A 9x9 island-bridge matrix with addressable integration of TFTs across islands demonstrates the scalability of the concept. Overall, the results verify the manufacturability of stretch-free 3D metal bridges where the three-dimensional shape is defined by the topography of the concave trench filling, with integrated active devices, and confirm the mechanical and electrical functionality of the produced flexible substrates.

physics.app-ph↗

Tailoring the Acidity of Liquid Media with Ionizing Radiation -- Rethinking the Acid-Base Correlation Beyond pH

Advanced in situ techniques based on electrons and X-rays are increasingly used to gain insights into fundamental materials dynamics in liquid media. Yet, ionizing radiation changes the solution chemistry. In this work, we show that ionizing radiation decouples the acidity from autoprotolysis. Consequently, pH is insufficient to capture the acidity of water-based systems under irradiation. Via radiolysis simulations, we provide a more conclusive description of the acid-base interplay. Finally, we demonstrate that acidity can be tailored by adjusting the dose rate and adding pH-irrelevant species. This opens up a huge parameter landscape for studies involving ionizing radiation.

physics.chem-ph↗

Highly Accurate Determination of Heterogeneously Stacked Van-der-Waals Materials by Optical Microspectroscopy

The composition of Van-der-Waals heterostructures is conclusively determined using a hybrid evaluation scheme of data acquired by optical microspectroscopy. This scheme deploys a parameter set comprising both change in reflectance and wavelength shift of distinct extreme values in reflectance spectra. Furthermore, the method is supported by an accurate analytical model describing reflectance of multilayer systems acquired by optical microspectroscopy. This approach allows uniquely for discrimination of 2D materials like graphene and hBN and, thus, quantitative analysis of Van-der-Waals heterostructures containing structurally very similar materials. The physical model features a transfer matrix method which allows for flexible, modular description of complex optical systems and may easily be extended to individual setups. It accounts for numerical apertures of applied objective lenses and a glass fiber which guides the light into the spectrometer by two individual weighting functions. The scheme is proven by highly accurate quantification of the number of layers of graphene and hBN in Van-der-Waals heterostructures. In this exemplary case, the fingerprint of graphene involves distinct deviations of reflectance accompanied by additional wavelength shifts of extreme values. In contrast to graphene the fingerprint of hBN reveals a negligible deviation in absolute reflectance causing this material being only detectable by spectral shifts of extreme values.

physics.app-ph↗