Colloidal molecules in microgravity assembled by critical Casimir forces
, , , oraz
14 mar 2025
O artykule
Kategoria artykułu: Research Note
Data publikacji: 14 mar 2025
Zakres stron: 21 - 29
DOI: https://doi.org/10.2478/gsr-2025-0001
Słowa kluczowe
© 2025 P. J. M. Swinkels et al., published by Sciendo
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.
Figure 1.
![Assembly of equilibrium and out-of-equilibrium structures by critical Casimir forces. (a–d) Confocal microscopy images of particles in equilibrium gas (a), liquid (b) and crystal (c) phases, and out-of-equilibrium, fractal aggregate (d). Temperature offsets DT=Tc-T are indicated. (e) Corresponding equilibrium phase diagram computed using Monte Carlo simulations with effective critical Casimir interactions as input. Experimental data: black dots and error bars; gas-liquid critical point is indicated by a star. Reprinted from [22] with the permission of AiP Publishing. (f) Space measurements of fully grown aggregates in microgravity. The compactness b=RH/Rg is plotted as a function of the fractal dimension df. Lines indicate relation for unit-step (solid), Gaussian (dashed) exponential (dotted) density–density correlation function of the aggregates. Insets show holographic reconstructions of aggregates grown at highest (top) and lowest (bottom) attraction. Reprinted with permission from [24].](https://sciendo-parsed.s3.eu-central-1.amazonaws.com/6796b4c2082aa65dea3daa5c/j_gsr-2025-0001_fig_001.jpg?X-Amz-Algorithm=AWS4-HMAC-SHA256&X-Amz-Content-Sha256=UNSIGNED-PAYLOAD&X-Amz-Credential=AKIA6AP2G7AKOUXAVR44%2F20250915%2Feu-central-1%2Fs3%2Faws4_request&X-Amz-Date=20250915T153600Z&X-Amz-Expires=3600&X-Amz-Signature=f19d73c69d72ec68b3d7de72fe98a3599aa6ec5cba2ca6fde43bf3a229661f5a&X-Amz-SignedHeaders=host&x-amz-checksum-mode=ENABLED&x-id=GetObject)
Figure 2.

Figure 3.
![Equilibrium polymerization of di-patch particles. (a) Fluorescence image showing a chain of particles bonded by critical Casimir forces via their patches (bright dots). Scale bar is 3μm (b–d) Microscope images of di-patch particle chains at increasing attractive strength (decreasing ΔT) at a surface coverage of f= 0.28. Colors mark connected chains. Scale bar is 20μm. (e) Corresponding chain length distributions for the different ΔT (see legend). Lines are exponential fits. (f) Chain network obtained with addition of a small fraction (10%) of tetra-patch particles. (g) Cluster size distributions after different growth times (see legend). Dotted lines indicate power-law fits with exponent T ~ −1.5 and exponential cutoff x̅ = 4, 11, 68 (dotted). (h) Confocal microscope image of three-dimensional network of di- and tetra-patch particles achieved with smaller (1μm) particles having larger gravitational height. Scale bar is 10μm. Panels (d)–(g) reprinted with permission from [29]. Copyright (2021) by the American Physical Society.](https://sciendo-parsed.s3.eu-central-1.amazonaws.com/6796b4c2082aa65dea3daa5c/j_gsr-2025-0001_fig_003.jpg?X-Amz-Algorithm=AWS4-HMAC-SHA256&X-Amz-Content-Sha256=UNSIGNED-PAYLOAD&X-Amz-Credential=AKIA6AP2G7AKOUXAVR44%2F20250915%2Feu-central-1%2Fs3%2Faws4_request&X-Amz-Date=20250915T153600Z&X-Amz-Expires=3600&X-Amz-Signature=3be322cc81cfe45627e50b00e2821f21815b2e58206601859c87a2421f19e6dd&X-Amz-SignedHeaders=host&x-amz-checksum-mode=ENABLED&x-id=GetObject)
Figure 4.
![Assembly of colloidal organic molecules. Backbones of colloidal organic-molecule analogues (“colloidal alkanes”), assembled from tetra-patch particles: Colloidal butane (a), 2-butyne (b), cyclobutane (c), cyclopentane (d) and methylcyclohexane (e), microscopy image (left) reconstruction (center) and chemical symbol (right). Reproduced with adaptation from [39].](https://sciendo-parsed.s3.eu-central-1.amazonaws.com/6796b4c2082aa65dea3daa5c/j_gsr-2025-0001_fig_004.jpg?X-Amz-Algorithm=AWS4-HMAC-SHA256&X-Amz-Content-Sha256=UNSIGNED-PAYLOAD&X-Amz-Credential=AKIA6AP2G7AKOUXAVR44%2F20250915%2Feu-central-1%2Fs3%2Faws4_request&X-Amz-Date=20250915T153600Z&X-Amz-Expires=3600&X-Amz-Signature=3770c2b30c034e2aa37ca6e84d5c507fcc714362e48adf4787f450b36dffbe30&X-Amz-SignedHeaders=host&x-amz-checksum-mode=ENABLED&x-id=GetObject)
Figure 5.
![Conformations and pseudorotation of colloidal cyclopentane. (a) Three-dimensional reconstructions of typical conformations of colloidal cyclopentane: Planar conformation (top), twist (or ‘half-chair’) conformation (bottom left), and envelope (or ‘bend’) conformation (bottom right). (b) Time series of three-dimensional configurations showing pseudo-rotation of colloidal cyclopentane. Snapshots are t = 12s apart. The typical relaxation time of a conformation is 24s, allowing for convenient observation. Symbols + and − indicate particles above and below the average plane, respectively, and arrows indicate particle movement towards the next time step. (c) Transition states in polar space during pseudorotation of three colloidal cyclopentane rings. Black trajectory: numbers correspond to snapshots in (b). Reproduced with adaptation from [39].](https://sciendo-parsed.s3.eu-central-1.amazonaws.com/6796b4c2082aa65dea3daa5c/j_gsr-2025-0001_fig_005.jpg?X-Amz-Algorithm=AWS4-HMAC-SHA256&X-Amz-Content-Sha256=UNSIGNED-PAYLOAD&X-Amz-Credential=AKIA6AP2G7AKOUXAVR44%2F20250915%2Feu-central-1%2Fs3%2Faws4_request&X-Amz-Date=20250915T153600Z&X-Amz-Expires=3600&X-Amz-Signature=b9d15f5e151f87c5714f64e99c8f61e81eaaf834ff60b1bcb5912a30092f157d&X-Amz-SignedHeaders=host&x-amz-checksum-mode=ENABLED&x-id=GetObject)
Figure 6.
