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Field programmable chemistry: Integrated chemical and electronic processing of informational molecules towards electronic chemical cells

机译:现场可编程化学:信息分子对电子化学电池的集成化学和电子处理

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The topic addressed is that of combining self-constructing chemical systems with electronic computation to form unconventional embedded computation systems performing complex nano-scale chemical tasks autonomously. The hybrid route to complex programmable chemistry, and ultimately to artificial cells based on novel chemistry, requires a solution of the two-way massively parallel coupling problem between digital electronics and chemical systems. We present a chemical microprocessor technology and show how it can provide a generic programmable platform for complex molecular processing tasks in Field Programmable Chemistry, including steps towards the grand challenge of constructing the first electronic chemical cells. Field programmable chemistry employs a massively parallel field of electrodes, under the control of latched voltages, which are used to modulate chemical activity. We implement such a field programmable chemistry which links to chemistry in rather generic, two-phase microfluidic channel networks that are separated into weakly coupled domains. Electric fields, produced by the high-density array of electrodes embedded in the channel floors, are used to control the transport of chemicals across the hydrodynamic barriers separating domains. In the absence of electric fields, separate microfluidic domains are essentially independent with only slow diffusional interchange of chemicals. Electronic chemical cells, based on chemical microprocessors, exploit a spatially resolved sandwich structure in which the electronic and chemical systems are locally coupled through homogeneous fine-grained actuation and sensor networks and play symmetric and complementary roles. We describe how these systems are fabricated, experimentally test their basic functionality, simulate their potential (e.g. for feed forward digital electrophoretic (FFDE) separation) and outline the application to building electronic chemical cells.
机译:解决的主题是将自构造化学系统与电子计算相结合,以形成自主执行复杂纳米级化学任务的非常规嵌入式计算系统。混合路线通往复杂的可编程化学,最终到达基于新型化学的人造细胞,需要解决数字电子与化学系统之间双向大规模并行耦合的问题。我们介绍了一种化学微处理器技术,并展示了它如何为现场可编程化学中的复杂分子处理任务提供通用的可编程平台,包括应对构造第一个电子化学电池这一巨大挑战的步骤。现场可编程化学在锁存电压的控制下,采用大量平行的电极场,这些电压用于调节化学活性。我们实现了这样一种现场可编程的化学方法,该方法在相当普通的两相微流体通道网络中链接到化学,该网络被分为弱耦合域。由嵌入通道底部的高密度电极阵列产生的电场被用来控制化学物质跨水动力屏障分离区域的传输。在没有电场的情况下,单独的微流体域基本上是独立的,只有化学物质缓慢扩散交换。基于化学微处理器的电子化学电池采用空间分辨的三明治结构,其中电子和化学系统通过均质的细粒度驱动和传感器网络进行局部耦合,并起着对称和互补的作用。我们将描述这些系统的制造方式,实验性测试其基本功能,模拟其潜力(例如用于前馈数字电泳(FFDE)分离)并概述在构建电子化学电池中的应用。

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