Propagation of Orientation Across Lengthscales in Sheared Self‐Assembling Hierarchical Suspensions via Rheo‐PLI‐SAXS
Распространение ориентации по масштабам в сдвиговых самособирающихся иерархических суспензиях методом Rheo-PLI-SAXS
2024-12-25
SCID: 54.1/y3egx32q
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Rheo-PLI-SAXScellulose nanocrystalscholesteric phasehierarchical suspensionsmultiscale orientation
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Abstract (AI)
Simultaneous rheological, polarized light imaging, and small-angle X-ray scattering experiments (Rheo-PLI-SAXS) are developed, thereby providing unprecedented level of insight into the multiscale orientation of hierarchical systems in simple shear. Notably, it is observed that mesoscale alignment in the flow direction does not develop simultaneously across nano-micro lengthscales in sheared suspensions of rod-like chiral-nematic (meso) phase forming cellulose nanocrystals. Rather, with increasing shear rate, orientation is observed first at mesoscale and then extends to the nanoscale, with influencing factors being the aggregation state of the hierarchy and concentration. In biphasic systems, where an isotropic phase co-exists with self-assembled liquid crystalline mesophase domains, the onset of mesodomain alignment towards the flow direction can occur at shear rates nearing one decade before a progressive increase in preferential orientation at nanoscale is detected. If physical confinement prevents the full formation of a cholesteric phase, mesoscale orientation occurs in shear rate ranges that correspond to de-structuring at nanoscale. Interestingly, nano- and mesoscale orientations appear to converge only for biphasic suspensions with primary nanoparticles predominantly made up of individual crystallites and in a high-aspect ratio nematic-forming thin-wall nanotube system. The nano-micro orientation propagation is attributed to differences in the elongation and breakage of mesophase domains.
Key Findings
1
In biphasic suspensions, mesodomain alignment can begin nearly one decade lower in shear rate than the subsequent increase in nanoscale preferential orientation.
2
In rod-like chiral-nematic cellulose nanocrystal suspensions, flow alignment emerges first at the mesoscale and propagates to the nanoscale as shear rate increases.
3
Nanoscale and mesoscale orientations converge mainly in systems containing predominantly individual crystallites or high-aspect-ratio nematic-forming thin-wall nanotubes, likely because of mesophase-domain elongation and breakage.
4
Rheo-PLI-SAXS simultaneously resolves rheology, polarized-light imaging, and nanoscale scattering, enabling multiscale orientation analysis under shear.
5
When confinement prevents complete cholesteric-phase formation, mesoscale alignment occurs while nanoscale structure is being disrupted rather than progressively aligned.
Research Object
Sheared hierarchical suspensions of rod-like chiral-nematic cellulose nanocrystals, including biphasic mesophase systems and high-aspect-ratio thin-wall nanotubes
Research Subject
Propagation and rate-dependent development of preferential orientation across nano- and mesoscale levels, governed by mesophase-domain aggregation, elongation, breakage, concentration, and confinement
Publication Details
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2024-12-25
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