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Aizenberg, Joanna

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Aizenberg

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Joanna

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Aizenberg, Joanna

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Now showing 1 - 5 of 5
  • Publication

    Biomimetic, Hierarchical, Multidimensional Patterning of Conductive Polymers on High-Aspect-Ratio Microstructures

    (PMSA Division of ACS, 2010) Kim, Philseok; Zarzar, Lauren; Epstein, Alexander K.; Aizenberg, Joanna
  • Publication

    Patterned, Oscillating, pH-Responsive Actuation Of Polymeric Microstructures In Fluid

    (Curran Associates, Inc., 2010) Zarzar, Lauren; Kim, Philseok; Aizenberg, Joanna
  • Publication

    Structural Transformation by Electrodeposition on Patterned Substrates (STEPS): A New Versatile Nanofabrication Method

    (American Chemical Society (ACS), 2012) Kim, Philseok; Epstein, Alexander K; Khan, Mughees; Zarzar, Lauren; Lipomi, Darren J.; Whitesides, George; Aizenberg, Joanna

    Arrays of high-aspect-ratio (HAR) nano- and microstructures are of great interest for designing surfaces for applications in optics, bio−nano interfaces, microelectromechanical systems, and microfluidics, but the difficulty of systematically and conveniently varying the geometries of these structures significantly limits their design and optimization for a specific function. This paper demonstrates a low-cost, high-throughput benchtop method that enables a HAR array to be reshaped with nanoscale precision by electrodeposition of conductive polymers. The method—named STEPS (structural transformation by electrodeposition on patterned substrates)—makes it possible to create patterns with proportionally increasing size of original features, to convert isolated HAR features into a closed-cell substrate with a continuous HAR wall, and to transform a simple parent two-dimensional HAR array into new three-dimensional patterned structures with tapered, tilted, anisotropic, or overhanging geometries by controlling the deposition conditions. We demonstrate the fabrication of substrates with continuous or discrete gradients of nanostructure features, as well as libraries of various patterns, starting from a single master structure. By providing exemplary applications in plasmonics, bacterial patterning, and formation of mechanically reinforced structures, we show that STEPS enables a wide range of studies of the effect of substrate topography on surface properties leading to optimization of the structures for a specific application. This research identifies solution-based deposition of conductive polymers as a new tool in nanofabrication and allows access to 3D architectures that were previously difficult to fabricate.

  • Publication

    Photothermally triggered actuation of hybrid materials as a new platform for in vitro cell manipulation

    (Springer Nature, 2017) Sutton, Amy; Shirman, Tanya; Timonen, Jaakko; England, Grant Tyler; Kim, Philseok; Kolle, Mathias; Ferrante, Thomas; Zarzar, Lauren; Strong, Liz; Aizenberg, Joanna

    Mechanical forces in the cell’s natural environment have a crucial impact on growth, differentiation and behavior. Few areas of biology can be understood without taking into account how both individual cells and cell networks sense and transduce physical stresses. However, the field is currently held back by the limitations of the available methods to apply physiologically relevant stress profiles on cells, particularly with sub-cellular resolution, in controlled in vitro experiments. Here we report a new type of active cell culture material that allows highly localized, directional, and reversible deformation of the cell growth substrate, with control at scales ranging from the entire surface to the subcellular, and response times on the order of seconds. These capabilities are not matched by any other method, and this versatile material has the potential to bridge the performance gap between the existing single cell micro-manipulation and 2D cell sheet mechanical stimulation techniques.

  • Publication

    Bio-inspired Design of Submerged Hydrogel-Actuated Polymer Microstructures Operating in Response to pH

    (Wiley-Blackwell, 2011) Zarzar, Lauren; Kim, Philseok; Aizenberg, Joanna