Department of Physics, Brandeis University, Waltham, MA 02453, USA.
Lab Chip. 2018 Feb 27;18(5):714-722. doi: 10.1039/c7lc01187c.
We present an experimental system of networks of coupled non-linear chemical reactors, which we theoretically model within a reaction-diffusion framework. The networks consist of patterned arrays of diffusively coupled nanoliter-scale reactors containing the Belousov-Zhabotinsky (BZ) reaction. Microfluidic fabrication techniques are developed that provide the ability to vary the network topology and the reactor coupling strength and offer the freedom to choose whether an arbitrary reactor is inhibitory or excitatory coupled to its neighbor. This versatile experimental and theoretical framework can be used to create a wide variety of chemical networks. Here we design, construct and characterize chemical networks that achieve the complexity of central pattern generators (CPGs), which are found in the autonomic nervous system of a variety of organisms.
我们提出了一个由耦合非线性化学反应器组成的网络实验系统,我们在反应扩散框架内对其进行了理论建模。这些网络由含有 Belousov-Zhabotinsky(BZ)反应的扩散耦合纳升级反应器的图案化阵列组成。我们开发了微流控制造技术,这些技术具有改变网络拓扑结构和反应器耦合强度的能力,并可以自由选择任意反应器与其相邻的反应器是抑制性耦合还是兴奋性耦合。这个多功能的实验和理论框架可以用于创建各种各样的化学网络。在这里,我们设计、构建和表征了化学网络,这些网络实现了自主神经系统中存在的中枢模式发生器(CPG)的复杂性。