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Biomedical subjects

Kathleen J Stebe

Publications and source records attributed to Kathleen J Stebe.

7 recordsLinked to original sources

Kinetics of desorption of alkanethiolates on gold.

Self-assembled monolayers (SAMs) of alkanethiols can undergo reductive desorption and oxidative re-adsorption. The Coulombic efficiency of the oxidative re-adsorption reaction is dependent on the chain length and solution pH. We show that the loss of alkanethiols from the surface after reductive desorption can be explained by a simple model that takes into account diffusion of the thiolate into the bulk solution at a rate that is determined by the bulk solubility. These results provide a quantitative basis for the determination of the loss of alkanethiols from the surface after reductive desorption.

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Orientation of a nanocylinder at a fluid interface.

A nanocylinder placed on a fluid interface can assume an end-on or side-on orientation, or it can immerse itself in the surrounding bulk phases. Any of these orientations can satisfy a mechanical force balance when the particle is small enough that gravitational effects are negligible. The orientation is determined by the surface energies of the fluid-solid, fluid-vapor, and vapor-solid surfaces. A comparison of the energy of each state allows phase diagrams to be defined in terms of the scaled aspect ratio x=2L/pir and the contact angle thetao, where L and r denote the nanocylinder length and radius, respectively. Line tension can also influence the orientations by changing the equilibrium contact angle theta and by increasing the energetic cost of the contact line. Phase diagrams accounting for positive line tensions Sigma are also constructed. These phase diagrams can be divided into two classes. In the first, over some range of x and Sigma, nanocylinders can be driven from side-on to end-on orientations with increasing Sigma. This transition terminates at a triple point where the side-on, end-on, and immersed energies are the same. In the second class, there is no triple point and, for a range of Sigma values, nanocylinders of all aspect ratios x prefer an end-on orientation. In all cases, for high enough Sigma, line tension drives a wetting transition similar to that already noted in the literature for spherical particles. The zero line tension predictions are compared favorably to experiment, in which functionalized gold nanowires made by template synthesis are spread at aqueous-gas interfaces, immobilized using a gel-fixation technique, and observed by scanning electron microscopy. The small aspect ratio particles (disks) were in an end-on configuration, while the longer nanowires were in a side-on orientation, in agreement with the theory.

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Site-selective patterning using surfactant-based resists.

Patterned SAMs of alkanethiols on gold or silver are explored as resists for electrodeposition and exhibit surprisingly rich behavior depending on the overpotential and the length of the alkane chain. At small overpotentials, SAMs are positive resists with deposition only in the surfactant-free regions. At larger overpotentials, SAMs are negative resists with preferential deposition in the SAM-modified regions. Tunable surfactant-based resists are potentially versatile tools to dictate the deposition of materials and are demonstrated as a means of creating complex, three-dimensional structures.

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Size-selective deposition and sorting of lyophilic colloidal particles on surfaces of patterned wettability.

A highly parallelizable means of positioning or sorting particles in a size-selective manner into arrays is demonstrated based on the placement of particle suspensions on surfaces of patterned wettability and the subsequent evaporation of the suspending solvent. The method relies on creating lyophilic features of dimensions similar to or greater than those of the particles to be arrayed and smaller than those of the particles to be excluded. As the contact line recedes, it fills lyophilic features, creating discrete fluid elements that mimic the underlying lyophilic pattern. The fluid elements have aspect ratios dictated by the contact angle. By adjusting the size of the lyophilic features, the heights of the fluid elements can be adjusted to sequester or exclude particles based on their diameter. The principal interest of this work is its broad applicability. No prior understanding of the particle properties is needed except for the size of the particle and its ability to be suspended in a solvent.

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Assembly of colloidal particles by evaporation on surfaces with patterned hydrophobicity.

Drops containing suspended particles are placed on surfaces of patterned wettability created using soft lithography; the drop diameter is large compared to the dimensions of the patterns on the substrate. As the three-phase contact line of the drop recedes, spontaneous dewetting of the hydrophobic domains and flow into the hydrophilic domains create discrete fluid elements with peripheries that can mimic the underlying surface topography. Suspended particles are carried with the fluid into the wetted regions and deposit there as the discrete fluid domains evaporate. If particle volume fractions are sufficiently high, the entire wetted domain can be covered with colloidal crystals. At lower volume fractions, flow within the evaporating fluid element can direct the deposition of colloidal particles at the peripheries of the domains. High-resolution arrays of particles were obtained with a variety of features depending upon the relative size of the wetting regions to the particles. When the wetting region is larger than the particles, three-dimensional and two-dimensional arrays of ordered particles mimicking the shape of the wetting pattern form, depending on the particle volume fraction. For lower volume fractions, one-dimensional (1-D) arrays along the wet/non-wet boundaries form. When the particle size is similar to the height of fluid on the wetted domain, zero-dimensional distributions of single particles centered in the wet regions can form for wetted squares or 1-D distributions (stripes) form along the axis of striped domains. Finally, when the wetting region is smaller than the particle size, the particles do not deposit within the features but are drawn backward with the receding drop. These results indicate that evaporation on surfaces of patterned wetting provides a highly parallelizable means of tailoring the geometry of particle distributions to create patterned media.

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Patterning of small particles by a surfactant-enhanced Marangoni-Bénard instability.

Evaporating drops provide a means of organizing particles suspended within them. Here, the manner in which surfactants alter these patterns is studied as a function of the surface state of an insoluble monolayer at the drop interface. The surface state is visualized throughout the drop evolution using fluorescence microscopy. A regime of surfactant coverage is identified that creates conditions that enhance the Marangoni-Bénard instability. This result was not anticipated in prior studies, in which surfactants are predicted to prevent this instability. These data demonstrate that, by tuning the liquid-gas boundary condition, the patterns formed from an evaporating drop can be controlled.

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Rapidly expanding viscous drop from a submerged orifice at finite reynolds numbers.

The rapid expansion and subsequent detachment of a drop or bubble are examined in this paper. Establishing the hydrodynamics of the drop growth and detachment process has applications ranging from improving insight into nucleate pool boiling, to improving techniques used to characterize dynamic surface tension. Here, the growth and detachment dynamics of viscous drops are studied numerically to establish an accurate description of the hydrodynamics. The full two-dimensional axisymmetric Navier-Stokes equations are solved using a single fluid volume-of-fluid (VOF) formulation on a fixed Eulerian grid. The interface is represented by marker particles that are convected in a Lagrangian manner on the underlying Eulerian grid. Results for surfactant-free, isothermal droplets from hemispherical caps to near detachment are presented.

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