Pan Zeyan, Liu Zhuangzhuang, Hu Xiaona, Cui Kai, Cai Wenfang, Guo Kun
School of Chemical Engineering and Technology, Xi'an Jiaotong University, Xi'an, 710049, China.
College of Veterinary Medicine, Northwest A&F University, Yangling, 712100, China.
Bioresour Bioprocess. 2023 Jan 20;10(1):3. doi: 10.1186/s40643-023-00627-6.
Microbial electrosynthesis (MES) is a promising technology for CO fixation and electrical energy storage. Currently, the low current density of MES limits its practical application. The H-mediated and non-biofilm-driven MES could work under higher current density, but it is difficult to achieve high coulombic efficiency (CE) due to low H solubility and poor mass transfer. Here, we proposed to enhance the hydrogen mass transfer by adding silica nanoparticles to the reactor. At pH 7, 35 ℃ and 39 A·m current density, with the addition of 0.3wt% silica nanoparticles, the volumetric mass transfer coefficient (k) of H in the reactor increased by 32.4% (from 0.37 h to 0.49 h), thereby increasing the acetate production rate and CE of the reactor by 69.8% and 69.2%, respectively. The titer of acetate in the reactor with silica nanoparticles (18.5 g·L) was 56.9% higher than that of the reactor without silica nanoparticles (11.8 g·L). Moreover, the average acetate production rate of the reactor with silica nanoparticles was up to 2.14 g·L·d in the stable increment phase, which was much higher than the other reported reactors. These results demonstrated that the addition of silica nanoparticles is an effective approach to enhancing the performance of H-mediated MES reactors.
微生物电合成(MES)是一种用于固定二氧化碳和储存电能的很有前景的技术。目前,MES的低电流密度限制了其实际应用。氢介导且无生物膜驱动的MES可以在更高的电流密度下运行,但由于氢的溶解度低和传质效果差,难以实现高库仑效率(CE)。在此,我们提出通过向反应器中添加二氧化硅纳米颗粒来增强氢的传质。在pH值为7、35℃和39 A·m的电流密度下,添加0.3wt%的二氧化硅纳米颗粒后,反应器中氢的体积传质系数(k)提高了32.4%(从0.37 h提高到0.49 h),从而使反应器的乙酸盐产率和CE分别提高了69.8%和69.2%。添加二氧化硅纳米颗粒的反应器中的乙酸盐浓度(18.5 g·L)比未添加二氧化硅纳米颗粒的反应器(11.8 g·L)高56.9%。此外,在稳定增长阶段,添加二氧化硅纳米颗粒的反应器的平均乙酸盐产率高达2.14 g·L·d,远高于其他已报道的反应器。这些结果表明,添加二氧化硅纳米颗粒是提高氢介导的MES反应器性能的有效方法。