Balakrishnan Divya, El Maiss Janwa, Olthuis Wouter, Pascual García César
Luxembourg Institute of Science and Technology (LIST), 41 Rue du Brill, L-4422Belvaux, Luxembourg.
MESA+ Institute, University of Twente, Drienerlolaan 5, 7522 NBEnschede, Netherlands.
ACS Omega. 2023 Feb 17;8(8):7587-7594. doi: 10.1021/acsomega.2c06897. eCollection 2023 Feb 28.
The control of acidity drives the assembly of biopolymers that are essential for a wide range of applications. Its miniaturization can increase the speed and the possibilities of combinatorial throughput for their manipulation, similar to the way that the miniaturization of transistors allows logical operations in microelectronics with a high throughput. Here, we present a device containing multiplexed microreactors, each one enabling independent electrochemical control of acidity in ∼2.5 nL volumes, with a large acidity range from pH 3 to 7 and an accuracy of at least 0.4 pH units. The attained pH within each microreactor (with footprints of ∼0.3 mm for each spot) was kept constant for long retention times (∼10 min) and over repeated cycles of >100. The acidity is driven by redox proton exchange reactions, which can be driven at different rates influencing the efficiency of the device in order to achieve more charge exchange (larger acidity range) or better reversibility. The achieved performance in acidity control, miniaturization, and the possibility to multiplex paves the way for the control of combinatorial chemistry through pH- and acidity-controlled reactions.
酸度控制驱动生物聚合物的组装,这些生物聚合物对于广泛的应用至关重要。其小型化可以提高操作的速度和组合通量的可能性,类似于晶体管的小型化使得微电子中的逻辑操作具有高通量。在此,我们展示了一种包含多路复用微反应器的装置,每个微反应器能够在约2.5 nL的体积中实现对酸度的独立电化学控制,酸度范围从pH 3到7,精度至少为0.4 pH单位。每个微反应器内达到的pH值(每个点的尺寸约为0.3 mm)在长时间保留(约10分钟)和超过100次的重复循环中保持恒定。酸度由氧化还原质子交换反应驱动,该反应可以以不同的速率进行,从而影响装置的效率,以实现更多的电荷交换(更大的酸度范围)或更好的可逆性。在酸度控制、小型化以及多路复用可能性方面所取得的性能为通过pH和酸度控制的反应来控制组合化学铺平了道路。