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111.
Hang Kuen Lau Shruti Rattan Hongbo Fu Cristobal G. Garcia Dylan M. Barber Kristi L. Kiick Alfred J. Crosby 《Macromolecular bioscience》2020,20(5)
Local, micromechanical environment is known to influence cellular function in heterogeneous hydrogels, and knowledge gained in micromechanics will facilitate the improved design of biomaterials for tissue regeneration. In this study, a system comprising microstructured resilin‐like polypeptide (RLP)–poly(ethylene glycol) (PEG) hydrogels is utilized. The micromechanical properties of RLP‐PEG hydrogels are evaluated with oscillatory shear rheometry, compression dynamic mechanic analysis, small‐strain microindentation, and large‐strain indentation and puncture over a range of different deformation length scales. The measured elastic moduli are consistent with volume averaging models, indicating that volume fraction, not domain size, plays a dominant role in determining the low strain mechanical response. Large‐strain indentation under a confocal microscope enables the visualization of the microstructured hydrogel micromechanical deformation, emphasizing the translation, rotation, and deformation of RLP‐rich domains. The fracture initiation energy results demonstrate that failure of the composite hydrogels is controlled by the RLP‐rich phase, and their independence with domain size suggested that failure initiation is controlled by multiple domains within the strained volume. This approach and findings provide new quantitative insight into the micromechanical response of soft hydrogel composites and highlight the opportunities in employing these methods to understand the physical origins of mechanical properties of soft synthetic and biological materials. 相似文献
112.
Alfred Maelicke 《Nachrichten aus der Chemie》1996,44(10):1002-1002
113.
Alfred Maelicke 《Nachrichten aus der Chemie》1996,44(11):1070-1071
114.
Grant T. D. Shouldice Alfred Rudin Anthony J. Paine 《Journal of polymer science. Part A, Polymer chemistry》1996,34(15):3061-3069
The basic features of a three-step experimental process to produce supermicron polymer particles are described. First, a submicron emulsifier-free latex is prepared by a well-known technique. Second, the latex is aggregated by destabilizing with cetyl pyridinium chloride under constant stirring conditions, to yield roughly spherical clusters of 6-12 μ diameter. Third, the aggregates are stabilized with poly(vinyl alcohol) and internally coalesced by heating at or above the glass transition temperature. The final product particles have relatively smooth surfaces. Results are qualitatively interpreted in terms of a dynamic equilibrium where the aggregate size is determined by a balance between attractive interparticle potentials and stirring shear forces. Bimodal aggregate size distributions suggest the aggregate break-up mechanism may involve the erosion of individual latex particles and small fragments from the surface of aggregates. © 1996 John Wiley & Sons, Inc. 相似文献
115.
Alfred Maelicke 《Nachrichten aus der Chemie》1995,43(4):444-448
116.
Alfred Schmidpeter Franz Steinmüller Konstantin Karaghiosoff 《Heteroatom Chemistry》1994,5(4):385-390
The triazaphosphole 1 adds sulfur along with HCl or H2S to yield, respectively, the dihydrotriazaphosphole thiochloride 4 and sesquisulfide 5 (two diastereomers). In pyridine solution, 1 adds sulfur alone to yield the trimer of a triazaphosphole monosulfide 7 . Its central cyclotriphosphazane trisulfide ring has a trans structure and a boat conformation. 相似文献
117.
Alfred Maelicke 《Nachrichten aus der Chemie》1994,42(10):1020-1022
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