Key Laboratory of Low-grade Energy Utilization Technologies and Systems, Chongqing University, Ministry of Education, Chongqing, 400044, China; Institute of Engineering Thermophysics, School of Energy and Power Engineering, Chongqing University, Chongqing, 400044, China.
Key Laboratory of Low-grade Energy Utilization Technologies and Systems, Chongqing University, Ministry of Education, Chongqing, 400044, China; Institute of Engineering Thermophysics, School of Energy and Power Engineering, Chongqing University, Chongqing, 400044, China.
Environ Res. 2023 Jan 1;216(Pt 3):114645. doi: 10.1016/j.envres.2022.114645. Epub 2022 Oct 30.
Microalgae biofilm-based culture provides an efficient CO reduction and wastewater treatment method for its high photosynthetic efficiency and density. As supporting substrates for microalgae biofilm, porous materials have a big available adsorption area, but mutual shading makes it difficult to transmit external light to the internal surface for attached cells' photosynthesis. Thus, light-guided particles (SiO) were introduced into photosensitive resin to fabricate a light-guided ordered porous photobioreactor (PBR) by 3D printing technology in this study. The space utilization of the PBR was significantly enhanced and the effective microalgae adsorption area was increased by 13.6 times. Further, a thermo-responsive hydrogel was grafted onto the surface of the substrate to form a smart temperature-controllable interface that could enhance microalgae adsorption and desorption in both directions. When the thermo-responsive layer received light, it would generate heat due to the hydrogel's photo-thermal effect. And the surface temperature would then raise to 33 °C, higher than the hydrogel phase transition point of 32 °C, making the surface shrinking and more hydrophobicity for microalgae cells attachment. The microalgae cells' adsorption capacity increased by 103%, resulting in a high microalgae growth rate of 3.572 g m d. When turning off the light, the surface temperature would cool down to below 20 °C, the surface would shrink. And the biofilm shows a 564.7% increase in desorption ability, realizing temperature-controlled microalgae harvesting.
基于微藻生物膜的培养为 CO 还原和废水处理提供了一种高效的方法,因为其具有高的光合效率和密度。作为微藻生物膜的支撑基质,多孔材料具有很大的可用吸附面积,但相互遮光使得外部光线难以传输到附着细胞的内部表面进行光合作用。因此,在这项研究中,通过 3D 打印技术,将光导粒子(SiO)引入到光敏树脂中,制造了一种光导有序多孔光生物反应器(PBR)。PBR 的空间利用率显著提高,有效微藻吸附面积增加了 13.6 倍。此外,在基底表面接枝上温敏水凝胶,形成智能温度可控界面,可增强微藻的吸附和解吸。当温敏层接收到光时,由于水凝胶的光热效应,它会产生热量,表面温度会升高到 33°C,高于水凝胶的相变点 32°C,使表面收缩,增加微藻细胞的附着疏水性。微藻细胞的吸附能力提高了 103%,微藻的生长速率达到了 3.572 g·m d。当关闭光源时,表面温度会降至 20°C 以下,表面会收缩,生物膜的解吸能力增加了 564.7%,实现了温度控制的微藻收获。