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Towards the Use of Biologically Inspired Techniques for the Assembly of Electronic Devices

机译:致力于利用生物启发技术组装电子设备

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Nature assembles nano-scale components using molecular recognition. In the case of DNA, hydrogen bonding is the driving force behind the matching of complementary pairs of single-stranded (SS) DNA to hybridize into a double strand of helical DNA. For the case of antibodies/antigens and ligands/receptors, binding takes places by a combination of electrostatic forces, chemical bonding, and shape mediated effects. In this project, the assembly of micron sized and smaller particles using biologically inspired events such as DNA hybridization and interactions of ligands and receptors is being investigated. Following the case of DNA, a single strand sequence can be attached to the device surfaces, which is complementary to a single strand sequence previously attached to a patterned surface. Using the natural hybridization of DNA, the devices are expected to assemble in solution as designed onto the substrate surface. Single strands of DNA can be used to provide charge on the devices so that long-range electrostatic forces may be used to bring the devices close to the assembly site. We have also used a less complex molecule to add negative charges to the particles allowing them to be guided into place using electric fields. Attachment of these molecules to surfaces is a critical step in the assembly process. Various factors affecting the attachment are being investigated and will be reported. These include sample preparation and conditions for attachment. We have used polystyrene beads as test objects and optimized the capture of the beads using DNA and Avidin/Biotin interactions. When successful, this approach can be used to assemble micro and nano-scale electronic circuitry including heterogeneous integration of materials.
机译:大自然使用分子识别来组装纳米级组件。在DNA的情况下,氢键是单链(SS)DNA互补对配对以杂交成螺旋DNA的双链背后的驱动力。对于抗体/抗原和配体/受体,结合是通过静电力,化学键和形状介导作用的组合而发生的。在该项目中,正在研究利用生物学启发的事件(例如DNA杂交以及配体和受体之间的相互作用)组装微米级和较小尺寸的颗粒。在DNA的情况下,可以将单链序列连接到设备表面,这与先前连接到图案化表面的单链序列互补。使用DNA的自然杂交,可以将设备按照设计在溶液中组装到基质表面上。 DNA的单链可用于在设备上提供电荷,因此可以使用远距离静电力使设备靠近组装位置。我们还使用了一种不太复杂的分子来向粒子添加负电荷,从而使它们可以使用电场被引导到位。这些分子附着在表面上是组装过程中的关键步骤。正在研究影响附件的各种因素,并将进行报告。其中包括样品制备和附着条件。我们已将聚苯乙烯珠用作测试对象,并使用DNA和抗生物素蛋白/生物素相互作用优化了珠的捕获。当成功时,该方法可用于组装包括材料异质集成的微米和纳米级电子电路。

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