Scientific publications

2022
Transparent aqueous rechargeable sodium-ion battery

Husmann, Samantha | Ramos, Maria K. | Zarbin, Aldo J.G.

DOI:

Aqueous sodium-ion battery is a sustainable, non-toxic, non-flammable, and low-cost alternative to lithium-ion batteries, while transparency is a growing requisite of modern and integrated devices that batteries have yet to fulfill. In this work we present the preparation of a transparent and rechargeable aqueous Na-ion battery, assembled with different thin films of carbon/cobalt-based nanomaterials as electrodes. Cobalt-filled carbon nanotubes and cobalt/cobalt oxide encapsulated carbon nanoparticles are simultaneously synthesized in one single experimental procedure and deposited as thin and transparent films through the liquid/liquid interfacial route. The former is used for the electrosynthesis of a Prussian blue analogue, yielding carbon nanotubes/cobalt hexacyanoferrate thin film nanocomposite used as cathodes, while the cobalt/cobalt oxide/carbon nanoparticles thin film is used as the anode. The transparent device is prepared using a diluted aqueous solution of NaCl as the electrolyte, reaching capacities of 22 mAh•g−1 at 2 A•g−1 that remains stable after 2000 charge/discharge cycles, and energy density of 19.2 Wh•kg−1 at 1.4 kW•kg−1.

DOI:

Electrochimica Acta,
2022, 422, 140548.

Water as a “glue” : Elasticity-enhanced wet attachment of biomimetic microcup structures

Wang, Yue | Li, Zhengwei | Elhebeary, Mohamed | Hensel, René | Arzt, Eduard | Saif, M. Taher A.

DOI:

Octopus, clingfish, and larva use soft cups to attach to surfaces under water. Recently, various bioinspired cups have been engineered. However, the mechanisms of their attachment and detachment remain elusive. Using a novel microcup, fabricated by two-photon lithography, coupled with in situ pressure sensor and observation cameras, we reveal the detailed nature of its attachment/detachment under water. It involves elasticity-enhanced hydrodynamics generating “self-sealing” and high suction at the cup-substrate interface, converting water into “glue.” Detachment is mediated by seal breaking. Three distinct mechanisms of breaking are identified, including elastic buckling of the cup rim. A mathematical model describes the interplay between the attachment/detachment process, geometry, elasto-hydrodynamics, and cup retraction speed. If the speed is too slow, then the octopus cannot attach; if the tide is too gentle for the larva, then water cannot serve as a glue. The concept of “water glue” can innovate underwater transport and manufacturing strategies. Under-water soft cups form strong attachment with solid surfaces upon retraction by generating large transient suction.

DOI:

Science Advances,
2022, 8 (12), eabm9341_1-7.

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Tuning the Release Force of Microfibrillar Adhesives by Geometric Design

Barnefske, Lena | Rundel, Fabian | Moh, Karsten | Hensel, René | Zhang, Xuan | Arzt, Eduard

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Abstract Switchable micropatterned adhesives exhibit high potential as novel resource-efficient grippers in future pick-and-place systems. In contrast with the adhesion acting during the “pick” phase, the release during the “place” phase has received little research attention so far. For objects smaller than typically 1 mm, release may become difficult as gravitational and inertial forces are no longer sufficient to allow shedding of the object. A compressive overload can initiate release by elastic buckling of the fibrils, but the switching ratio (ratio between high and low adhesion force) is typically only 2–3. In this work, new microfibrillar designs are reported exhibiting directional buckling with high switching ratios in the order of 20. Their functionality is illustrated by in situ optical observation of the contact signatures. Such micropatterns can enable the successful release of small objects with high placement accuracy.

DOI:

Advanced Materials Interfaces,
2022, 9 (33), 2201232.

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Transient and steady state viscoelastic crack propagation in a double cantilever beam specimen

Ciavarella, M. | Papangelo, A. | McMeeking, Robert M.

DOI:

Crack growth in viscoelastic materials is understood with the use of cohesive models, or steady state theories which focus on viscoelastic dissipation. We consider a double cantilever beam (DCB) specimen under a remote constant pure moment, which is initially suddenly applied to the beams. It is shown that the response to the applied moment rapidly reaches a steady state in terms of crack propagation speed. In contrast, it is shown that the external work rate, contributing to fracture energy, stored elastic energy and viscous dissipation, has a transient that possibly lasts a significantly longer time. The dissipation rate increases with speed for a standard material, reaching a limit governed by the ratio of instantaneous to relaxed modulus. However, the initial dissipation rate at low crack propagation speeds can be orders of magnitude larger than the latter limit, and depends on the ratio between the initial crack size and the fracture process zone size, a regime which we define ultratough. For thin beams, we do not find any evidence, even in the steady state, of the dissipation-based theories’ suggestion of a reduced maximum load and then of an unstable regime of decreasing load with speed.

DOI:

International Journal of Mechanical Sciences,
2022, 229, 107510.

Strategy for optimizing experimental settings for studying low atomic number colloidal assemblies using liquid phase scanning transmission electron microscopy

Kunnas, Peter | Moradi, Mohammad-Amin | Sommerdijk, Nico | de Jonge, Niels

DOI:

Observing processes of nanoscale materials of low atomic number is possible using liquid phase electron microscopy (LP-EM). However, the achievable spatial resolution (d) is limited by radiation damage. Here, we examine a strategy for optimizing LP-EM experiments based on an analytical model and experimental measurements, and develop a method for quantifying image quality at ultra low electron dose De using scanning transmission electron microscopy (STEM). As experimental test case we study the formation of a colloidal binary system containing 30-nm diameter SiO2 nanoparticles (SiONPs), and 100-nm diameter polystyrene microspheres (PMs). We show that annular dark field (DF) STEM is preferred over bright field (BF) STEM for practical reasons. Precise knowledge of the material's density is crucial for the calculations in order to match experimental data. To calculate the detectability of nano-objects in an image, the Rose criterion for single pixels is expanded to a model of the signal to noise ratio obtained for multiple pixels spanning the image of an object. Using optimized settings, it is possible to visualize the radiation-sensitive, hierarchical low-Z binary structures, and identify both components.

DOI:

Ultramicroscopy,
2022, 240, 113596.

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Synthesis of 3,4-Dihydro-2H-pyrroles from Ketones, Aldehydes, and Nitro Alkanes via Hydrogenative Cyclization

Klausfelder, Barbara | Blach, Patricia | de Jonge, Niels | Kempe, Rhett

DOI:

Syntheses of N-heterocyclic compounds that permit a flexible introduction of various substitution patterns using inexpensive and diversely available starting materials are highly desirable. Easy to handle and reusable catalysts based on earth-abundant metals are especially attractive for these syntheses. We report here on the synthesis of 3,4-dihydro-2H-pyrroles via the hydrogenation and cyclization of nitro ketones. The latter are easily accessible from three components: a ketone, an aldehyde and a nitroalkane. Our reaction has a broad scope and 23 of the 33 products synthesized are compounds which have not yet been reported. The key to the general hydrogenation/cyclization reaction is a highly active, selective and reusable nickel catalyst, which was identified from a library of 24 earth-abundant metal catalysts.

DOI:

Chemistry – A European Journal,
2022, 28 (47), e202201307.

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Solvent-free mechanochemical green synthesis of Schiff bases of tranexamic acid and study of their urease inhibitory and antioxidant activities

Zulfiqar, Abid | Ahmed, Dildar

DOI:

Three Schiff bases of tranexamic acid were successfully synthesized by a mechanochemical green method, which is 4-{(5-bromo-2- hydroxybenzylidene)amino]methyl}cyclohexanecarboxylic acid (SB1), 4-{(2-hydroxybenzylidene)amino]methyl}cyclohexanecarboxylic acid (SB2), and 4-{(4-nitrobenzylidene)amino]methyl}cyclohexanecarboxylic acid (SB3) in good yield. Their structures were confirmed based on spectroscopic data. The bases displayed considerable urease inhibitory activity with IC50 (µg/mL) 33.41, 40.64, 26.18, and 11.14 for SB1, SB2, SB3, and standard thiourea, respectively. They revealed weak antiradical activity in DPPH assay with EC50 (µg/mL) 1138, 1239, and 24248 for SB1, SB2, and SB3, respectively. In conclusion, grinding is an efficient and environmentally friendly method for synthesizing these bases, which may provide potential candidates for new medicines.

DOI:

Asian Journal of Green Chemistry,
2022, 6, 40-47.

The inherent antibiotic activity of myxobacteria-derived autofluorescent outer membrane vesicles is switched on and off by light stimulation

Lapuhs, Philipp | Heinrich, Eilien | Garcia, Ronald | Goes, Adriely | Frank, Nicolas | Bollenbach, Lukas | Stibane, Veronika | Kuhn, Thomas | Koch, Marcus | Kiemer, Alexandra K. | Müller, Rolf | Fuhrmann, Kathrin | Fuhrmann, Gregor

DOI:

Outer membrane vesicles are small, lipid-based vesicles shed from the outer membrane of Gram-negative bacteria. They are becoming increasingly recognised as important factors for resistance gene transfer, bacterial virulence factors and host cell modulation. The presence of pathogenic factors and antimicrobial compounds in bacterial vesicles has been proven in recent years, but it remains unclear, if and how environmental factors, such as light specifically regulate the vesicle composition. We report the first example of autofluorescent vesicles derived from non-pathogenic soil-living myxobacteria. These vesicles additionally showed inherent antibiotic activity, a property that is specifically regulated by light stimulation of the producing bacteria. Our data provide a central basis for better understanding the environmental impact on bacteria-derived vesicles, and design of future therapeutic options.

DOI:

Nanoscale,
2022, 14 (47), 17534-17542.

Targeting extracellular lectins of Pseudomonas aeruginosa with glycomimetic liposomes

Metelkina, Olga | Huck, Benedikt | O’Connor, Jonathan S. | Koch, Marcus | Manz, Andreas | Lehr, Claus-Michael | Titz, Alexander

DOI:

The antimicrobial resistance crisis requires novel approaches for the therapy of infections especially with Gram-negative pathogens. Pseudomonas aeruginosa is defined as priority 1 pathogen by the WHO and thus of particular interest. Its drug resistance is primarily associated with biofilm formation and essential constituents of its extracellular biofilm matrix are the two lectins, LecA and LecB. Here, we report microbial lectin-specific targeted nanovehicles based on liposomes. LecA- and LecB-targeted phospholipids were synthesized and used for the preparation of liposomes. These liposomes with varying surface ligand density were then analyzed for their competitive and direct lectin binding activity. We have further developed a microfluidic device that allowed the optical detection of the targeting process to the bacterial lectins. Our data showed that the targeted liposomes are specifically binding to their respective lectin and remain firmly attached to surfaces containing these lectins. This synthetic and biophysical study provides the basis for future application in targeted antibiotic delivery to overcome antimicrobial resistance.

DOI:

Journal of Materials Chemistry B,
2022, 10 (4), 537-548.

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3D Printed Tubular Scaffolds with Massively Tailorable Mechanical Behavior

Pickering, Edmund | Paxton, Naomi C. | Bo, Arixin | O’Connell, Bridget | King, Mitchell | Woodruff, Maria A

DOI:

Melt electrowriting (MEW) is a promising additive manufacturing technique for tissue scaffold biofabrication. Successful application of MEW scaffolds requires strictly controlled mechanical behavior. This requires scaffold geometry be optimized to match native tissue properties while simultaneously supporting cell attachment and proliferation. The objective of this work is to investigate how geometric properties can be exploited to massively tailor the mechanical behavior of tubular crosshatch scaffolds. An experimentally validated finite element (FE) model is developed and 441 scaffold geometries are investigated under tension, compression, bending, and radial loading. A range of pore areas (4–150 mm2) and pore angles (11°–134°) are investigated. It is found that scaffold mechanical behavior is massively tunable through the control of these simple geometric parameters. Across the ranges investigated, scaffold stiffness varies by a factor of 294× for tension, 204× for compression, 231× for bending, and 124× for radial loading. Further, it is discussed how these geometric parameters can be simultaneously tuned for different biomimetic material applications. This work provides critical insights into scaffold design to achieve biomimetic mechanical behavior and provides an important tool in the development of biomimetic tissue engineered constructs.

DOI:

Advanced Engineering Materials,
2022, 24 (11), 2200479.

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