Quinn Harley, Robben Gregory A, Zheng Zhaoyi, Gardner Alan L, Werner Jörg G, Brown Keith A
Division of Materials Science & Engineering, Boston University, Boston, MA 02215, USA.
Department of Mechanical Engineering, Boston University, Boston, MA 02215, USA.
Mater Horiz. 2024 Oct 28;11(21):5331-5340. doi: 10.1039/d4mh00797b.
We introduce the polymer analysis and discovery array (PANDA), an automated system for high-throughput electrodeposition and functional characterization of polymer films. The PANDA is a custom, modular, and low-cost system based on a CNC gantry that we have modified to include a syringe pump, potentiostat, and camera with a telecentric lens. This system can perform fluid handling, electrochemistry, and transmission optical measurements on samples in custom 96-well plates that feature transparent and conducting bottoms. We begin by validating this platform through a series of control fluid handling and electrochemistry experiments to quantify the repeatability, lack of cross-contamination, and accuracy of the system. As a proof-of-concept experimental campaign to study the functional properties of a model polymer film, we optimize the electrochromic switching of electrodeposited poly(3,4-ethylenedioxythiophene):poly(styrene sulfonate) (PEDOT:PSS) films. In particular, we explore the monomer concentration, deposition time, and deposition voltage using an array of experiments selected by Latin hypercube sampling. Subsequently, we run an active learning campaign based upon Bayesian optimization to find the processing conditions that lead to the highest electrochromic switching of PEDOT:PSS. This self-driving lab integrates optical and electrochemical characterization to constitute a novel, automated approach for studying functional polymer films.
我们介绍了聚合物分析与发现阵列(PANDA),这是一种用于聚合物薄膜高通量电沉积和功能表征的自动化系统。PANDA是一个基于数控龙门架的定制、模块化且低成本的系统,我们对其进行了改进,使其包括一个注射泵、恒电位仪以及配备远心镜头的相机。该系统可以对底部透明且导电的定制96孔板中的样品进行流体处理、电化学和透射光学测量。我们首先通过一系列控制流体处理和电化学实验来验证这个平台,以量化系统的可重复性、无交叉污染性和准确性。作为一项研究模型聚合物薄膜功能特性的概念验证实验活动,我们优化了电沉积聚(3,4 - 乙撑二氧噻吩):聚(苯乙烯磺酸盐)(PEDOT:PSS)薄膜的电致变色切换。特别是,我们使用拉丁超立方采样选择的一系列实验来探究单体浓度、沉积时间和沉积电压。随后,我们基于贝叶斯优化开展主动学习活动,以找到导致PEDOT:PSS最高电致变色切换的加工条件。这个自动驾驶实验室整合了光学和电化学表征,构成了一种研究功能聚合物薄膜的新颖自动化方法。