Department of Chemistry and Biochemistry and the Center for Electrochemistry, The University of Texas at Austin, 1 University Station, A5300, Austin, Texas 78712-0165, United States.
J Am Chem Soc. 2010 Nov 3;132(43):15404-9. doi: 10.1021/ja107095z.
Here we report a simple design philosophy, based on the principles of bipolar electrochemistry, for the operation of microelectrochemical integrated circuits. The inputs for these systems are simple voltage sources, but because they do not require much power they could be activated by chemical or biological reactions. Device output is an optical signal arising from electrogenerated chemiluminescence. Individual microelectrochemical logic gates are described first, and then multiple logic circuits are integrated into a single microfluidic channel to yield an integrated circuit that can perform parallel logic functions. AND, OR, NOR, and NAND gates are described. Eventually, systems such as those described here could provide on-chip data processing functions for lab-on-a-chip devices.
在这里,我们报告了一种基于双极电化学原理的简单设计理念,用于操作微电子电化学集成电路。这些系统的输入是简单的电压源,但由于它们不需要太多的功率,因此可以通过化学或生物反应来激活。器件输出是由电致化学发光产生的光学信号。首先描述了单个微电子电化学逻辑门,然后将多个逻辑电路集成到单个微流道中,得到可以执行并行逻辑功能的集成电路。描述了与门、或门、非门和与非门。最终,像这里描述的系统可以为微流控芯片设备提供片上数据处理功能。