Scientific publications

2018
Functional Polymeric Materials Inspired by Geckos, Mussels, and Spider Silk

Yang, Juan | Włodarczyk-Biegun, Małgorzata K. | Filippov, Alexei | Akerboom, Sabine | Dompé, Marco | van Hees, Ilse A. | Mocan, Merve | Kamperman, Marleen

DOI:

Abstract Nature has developed elegant and economical strategies to produce materials that are well-adapted to their purposes. As biology evolved to remarkable and complex designs, synthetic mimics are evolving toward new levels of complexity achieving larger combinations of properties within one material. The field of bioinspiration encompasses a wide range of advanced materials ranging from biooptics to energy materials, to biomaterials. In this paper an overview is given of selected recent developments in the field of bioinspired material design focusing on gecko-inspired adhesives, mussel-inspired coatings, and spider silk-inspired biomaterials.

DOI:

Macromolecular Chemistry and Physics,
2018, 219 (16), 1800051.

Microenvironments to study migration and somal translocation in cortical neurons

Zhao, Shifang | Fan, Wenqiang | Guo, Xiang | Xue, Longjian | Berninger, Benedikt | Salierno, Marcelo J. | del Campo, Aránzazu

DOI:

Migrating post-mitotic neurons of the developing cerebral cortex undergo terminal somal translocation (ST) when they reach their final destination in the cortical plate. This process is crucial for proper cortical layering and its perturbation can lead to brain dysfunction. Here we present a reductionist biomaterials platform that faithfully supports and controls the distinct phases of terminal ST in vitro. We developed microenvironments with different adhesive molecules to support neuronal attachment, neurite extension, and migration in distinct manners. Efficient ST occurred when the leading process of migratory neurons crossed from low-to high-adhesive areas on a substrate, promoting spreading of the leading growth cone. Our results indicate that elementary adhesive cell-substrate interactions strongly influence migratory behavior and the final positioning of neurons during their developmental journey. This in vitro model allows advanced experimentation to reveal the microenvironmental requirements underlying cortical layer development and disorders.

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Biomaterials,
2018, 156, 238-247.

Optoregulated Biointerfaces to Trigger Cellular Responses

Zheng, Yijun | Farrukh, Aleeza | del Campo, Aránzazu

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Optoregulated biointerfaces offer the possibility to manipulate the interactions between cell membrane receptors and the extracellular space. This Invited Feature Article summarizes recent efforts by our group and others during the past decade to develop light-responsive biointerfaces to stimulate cells and elicit cellular responses using photocleavable protecting groups (PPG) as our working tool. This article begins by providing a brief introduction to available PPGs, with a special focus on the widely used o-nitrobenzyl family, followed by an overview of molecular design principles for the control of bioactivity in the context of cell–material interactions and the characterization methods to use in following the photoreaction at surfaces. We present various light-guided cellular processes using PPGs, including cell adhesion, release, migration, proliferation, and differentiation, both in vitro and in vivo. Finally, this Invited Feature Article closes with our perspective on the current status and future challenges of this topic.

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Langmuir,
2018, 34 (48), 14459-14471.

Mechanochemical synthesis of porous carbon at room temperature with a highly ordered sp2 microstructure

Casco, M. E. | Badaczewski, Felix M. | Grätz, S. | Tolosa, Aura | Presser, Volker | Smarsly, Bernd M. | Borchardt, Lars

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Carbon nanostructures with a well-developed turbostratic sp2 structure and high porosity are synthesized at room temperature inside a planetary ball mill. The obtained carbons were analyzed in-depth by means of gas adsorption, wide-angle X-ray scattering (WAXS), Raman spectroscopy, and transmission electron microscopy (TEM). Our approach involves the solvent-free reaction between calcium carbide (CaC2) and hexachlorobenzene (C6Cl6) conducted under mechanochemical conditions. After certain mechanical activation time, the exothermic nature of the reaction (−492 kcal) provokes a combustion-like event that results in innocuous salt (CaCl2) and a carbonaceous material. Carbon with a high degree of structural order in the constituting graphene and the graphene stacks, possessing almost no internal surface, can be obtained after 5 min of milling time with a mass ratio CaC2/C6Cl6 of 0.9, while carbon exhibiting a surface area as high as 915 m2/g can be obtained after 2 h of milling time with a mass ratio CaC2/C6Cl6 of 5.1. WAXS results and TEM observations reveal a mixture of amorphous carbon and non-graphitic phases. Among the last one, spherical-shaped carbons and curved nanosized strips can be easily distinguished.

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Carbon,
2018, 139, 325-333.

Carbon onion/sulfur hybrid cathodes via inverse vulcanization for lithium-sulfur batteries

Choudhury, Soumyadip | Srimuk, Pattarachai | Raju, Kumar | Tolosa, Aura | Fleischmann, Simon | Zeiger, Marc | Ozoemena, Kenneth I. | Borchardt, Lars | Presser, Volker

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A sulfur-1,3-diisopropenylbenzene copolymer was synthesized by ring-opening radical polymerization and hybridized with carbon onions at different loading levels. The carbon onion mixing was assisted by shear in a two-roll mill to capitalize on the softened state of the copolymer. The sulfur copolymer and the hybrids were thoroughly characterized in structure and chemical composition, and finally tested by electrochemical benchmarking. An enhancement of specific capacity was observed over 140 cycles at higher content of carbon onions in the hybrid electrodes. The copolymer hybrids demonstrate a maximum initial specific capacity of 1150 mA h gsulfur-1 (850 mA h gelectrode-1) and a low decay of capacity to reach 790 mA h gsulfur-1 (585 mA h gelectrode-1) after 140 charge/discharge cycles. All carbon onion/sulfur copolymer hybrid electrodes yielded high chemical stability, stable electrochemical performance superior to conventional melt-infiltrated reference samples having similar sulfur and carbon onion content. The amount of carbon onions embedded in the sulfur copolymer has a strong influence on the specific capacity, as they effectively stabilize the sulfur copolymer and sterically hinder the recombination of sulfur species to the S8 configuration.

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Sustainable Energy & Fuels,
2018, 2 (1), 133-146.

Carbon onion-sulfur hybrid cathodes for lithium-sulfur batteries

Choudhury, Soumyadip | Zeiger, Marco | Massuti-Ballester, Pau | Fleischmann, Simon | Formanek, Petr | Borchardt, Lars | Presser, Volker

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In this study, we explore carbon onions (diameter below 10 nm), for the first time, as a substrate material for lithium sulfur cathodes. We introduce several scalable synthesis routes to fabricate carbon onion-sulfur hybrids by adopting in situ and melt diffusion strategies with sulfur fractions up to 68 mass%. The conducting skeleton of agglomerated carbon onions proved to be responsible for keeping active sulfur always in close vicinity to the conducting matrix. Therefore, the hybrids are found to be efficient cathodes for Li-S batteries, yielding 97-98% Coulombic efficiency over 150 cycles with a slow fading of the specific capacity (ca. 660 mA h g-1 after 150 cycles) in long term cycle test and rate capability experiments.

DOI:

Sustainable Energy & Fuels,
2018, 1 (1), 84-94.

OPEN ACCESS
Design of Carbon/Metal Oxide Hybrids for Electrochemical Energy Storage

Fleischmann, Simon | Tolosa, Aura | Presser, Volker

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Abstract Next generation electrochemical energy storage materials that enable a combination of high specific energy, specific power, and cycling stability can be obtained by a hybridization approach. This involves electrode materials that contain carbon and metal oxide phases linked on a nanoscopic level and combine characteristics of supercapacitors and batteries. The combination of the components requires careful design to create synergistic effects for an increased electrochemical performance. Improved understanding of the role of carbon as a substrate has advanced the power handling and cycling stability of hybrid materials significantly in recent years. This Concept outlines different design strategies for the design of hybrid electrode materials: (1) the deposition of metal oxides on readily existing carbon substrates and (2) co-synthesizing both carbon and metal oxide phase during the synthesis procedure. The implications of carbon properties on the hybrid material's structure and performance will be assessed and the impact of the hybrid electrode architecture will be analyzed. The advantages and disadvantages of all approaches are highlighted and strategies to overcome the latter will be proposed.

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Chemistry – A European Journal,
2018, 24 (47), 12143-12153.

Atomic Layer-Deposited Molybdenum Oxide/Carbon Nanotube Hybrid Electrodes: The Influence of Crystal Structure on Lithium-Ion Capacitor Performance

Fleischmann, Simon | Zeiger, Marco | Quade, Antje | Kruth, Angela | Presser, Volker

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Merging of supercapacitors and batteries promises the creation of electrochemical energy storage devices that combine high specific energy, power, and cycling stability. For that purpose, lithium-ion capacitors (LICs) that store energy by lithiation reactions at the negative electrode and double-layer formation at the positive electrode are currently investigated. In this study, we explore the suitability of molybdenum oxide as a negative electrode material in LICs for the first time. Molybdenum oxide–carbon nanotube hybrid materials were synthesized via atomic layer deposition, and different crystal structures and morphologies were obtained by post-deposition annealing. These model materials are first structurally characterized and electrochemically evaluated in half-cells. Benchmarking in LIC full-cells revealed the influences of crystal structure, half-cell capacity, and rate handling on the actual device level performance metrics. The energy efficiency, specific energy, and power are mainly influenced by the overpotential and kinetics of the lithiation reaction during charging. Optimized LIC cells show a maximum specific energy of about 70 W·h·kg–1 and a high specific power of 4 kW·kg–1 at 34 W·h·kg–1. The longevity of the LIC cells is drastically increased without significantly reducing the energy by preventing a deep cell discharge, hindering the negative electrode from crossing its anodic potential limit.

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ACS Applied Materials & Interfaces,
2018, 10 (22), 18675-18684.

Semi-continuous capacitive deionization using multi-channel flow stream and ion exchange membranes

Kim, Choonsoo | Srimuk, Pattarachai | Lee, Juhan | Aslan, Mesut | Presser, Volker

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Capacitive deionization (CDI) is a promising desalination process, but conventional static electrode CDI operates by sequentially cycling through charging and discharging to produce fresh and concentrated water, respectively. However, an effective continuous operation is desirable for optimized system operation. Here, we report a semi-continuous desalination process with a novel modified CDI cell architecture using a multi-channel flow stream and ion exchange membranes (MC-MCDI). This MC-MCDI consists of two channels including side and middle channels with a pair of cation and anion ion exchange membranes where the feed streams can be separately distributed without mixing. The MC-MCDI design allows semi-continuous production of clean water since the separated middle and side channels are alternately desalinated and regenerated: one channel is being desalinated while the other channel is regenerated. Therefore, the cell can produce clean water during both charging and discharging, enabling semi-continuous operation. In addition, with the benefit from similar cell configuration with membrane CDI, the MC-MCDI design exhibits a high salt adsorption capacity (SAC) of 22 ± 2 mg/g and charge efficiency of 90 ± 2% at middle and side channels during charging and discharging with reverse voltage operation (cell voltage of + 1.2 V vs. − 1.2 V).

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Desalination,
2018, 425, 104-110.

Enhanced desalination via cell voltage extension of membrane capacitive deionization using an aqueous/organic bi-electrolyte

Kim, Choonsoo | Srimuk, Pattarachai | Lee, Juhan | Presser, Volker

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Capacitive deionization (CDI) is a promising desalination technology based on ion electrosorption. The desalination capacity of CDI using carbon electrodes has remained limited due to a low operating cell voltage of around 1.2 V originating from the electrochemical stability window of water. Here, we report a novel multi-channel membrane CDI system that allows extension of the cell voltage by immersing one carbon electrode in an organic electrolyte and the other in an aqueous electrolyte. The resulting membrane CDI system using an aqueous/organic bi-electrolyte consists of two side-channels for supporting electrolytes with activated carbon electrodes and middle-channel for the feedwater flow. The middle-channel is separated by ion exchange membranes from the side-channels allowing highly concentrated water and organic supporting electrolytes (1 M NaCl in water and 1 M NaClO4 in propylene carbonate), respectively. Using an organic electrolyte for negative electrode (Na+ adsorption), the stable operating cell voltage was increased to 2.4 V. At the operating cell voltage of 2.4 V, the system provided an excellent desalination capacity of 63.5 ± 4 mg/g with charge efficiency of 95%.

DOI:

Desalination,
2018, 443, 56-61.