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Semiconductor nanowire devices: Novel morphologies and applications to electrogenic biological systems

Posted on:2010-05-27Degree:Ph.DType:Thesis
University:Harvard UniversityCandidate:Timko, Brian PaulFull Text:PDF
GTID:2441390002470434Subject:Chemistry
Abstract/Summary:
The interface between nanoscale semiconductors and biological systems represents a powerful means for molecular-scale, two-way communication between these two diverse yet complementary systems. In this thesis, I present a general methodology for the synthesis of semiconductor nanowires with rationally-defined material composition and geometry. Specifically, I demonstrate that this technique can be used to fabricate silicon nanowires, hollow nanostructures (e.g. nanotubes, nanocones and branched tubular networks), and Ge/Si heterostructures that exhibit 1D hole gasses. Using bottom-up assembly techniques, nanostructures are subsequently built into arrays containing up to tens of nanowire field-effect transistors (NW-FETs) that exhibit exquisite sensitivity to local charges. Significantly, this robust assembly technique enables integration of disparate materials (e.g. n- and p-type silicon nanowires) on virtually any type of substrate. These arrays are particularly useful for integration with biological systems.;I will demonstrate that at the single-cell level, silicon nanowire device arrays can be integrated with mammalian neurons. Discrete hybrid structures enable neuronal stimulation and recording at the axon, dendrite, or soma with high sensitivity and spatial resolution, while aligned arrays containing up to 50 devices can be used to measure the speed and temporal evolution of signals or to interact with a single cell as multiple inputs and outputs. I analyze the shape and magnitude of reported signals, and place within the context of previously reported results.;Hybrid interfaces can also be extended to entire organs such as embryonic chicken hearts. NW-FET signals are synchronized with the beating heart, and the signal amplitude is directly related to the device sensitivity. Multiplexed measurements made from NW-FET arrays further show that signal propagation across the myocardium can be mapped, with a potential resolution significantly better than microelectrode techniques. I exploit the unique capability of the bottom-up approach to fabricate NW-FET arrays on flexible and transparent plastic substrates, and demonstrate that these novel device arrays enable signal recording in a number of conformations as well as registration of devices to the heart surface. Taken together, these findings demonstrate that nanowire device arrays are a robust platform for studying electrically-active systems at the single-cell or whole- tissue level, and could enable fundamental studies of cellular-level biophysics, real-time drug assays, and novel implants.
Keywords/Search Tags:Systems, Biological, Novel, Device, Nanowire, Arrays
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