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使用海藻酸钠/ε-聚赖氨酸墨水进行 3D 打印构建生物载体:增强微生物富集以实现废水中高效的氮去除。

3D printing for constructing biocarriers using sodium alginate/ε-poly-l-lysine ink: Enhancing microbial enrichment for efficient nitrogen removal in wastewater.

机构信息

School of Environmental Science and Engineering, Tianjin University, Tianjin 300350, China.

Power China Zhongnan Engineering Corporation Limited, Changsha 410014, China.

出版信息

Sci Total Environ. 2024 Nov 10;950:175296. doi: 10.1016/j.scitotenv.2024.175296. Epub 2024 Aug 5.

Abstract

The microbial enrichment of traditional biocarriers is limited due to the inadequate consideration of spatial structure and surface charging characteristics. Here, capitalizing on the ability of 3D printing technology to fabricate high-resolution materials, we further designed a positively charged sodium alginate/ε-poly-l-lysine (SA/ε-PL) printing ink, and the 3D printed biocarriers with ideal pore structure and rich positive charge were constructed to enhance the microbial enrichment. The rheological and mechanical tests confirmed that the developed SA/ε-PL ink could simultaneously satisfy the smooth extrusion for printing process and the maintenance of 3D structure. The utilization of the ε-PL secondary cross-linking strategy reinforced the 3D mechanical structure and imparted the requisite physical properties for its application as a biocarrier. Compared with traditional sponge carriers, 3D printed biocarrier had a faster initial attachment rate and a higher biomass of 14.58 ± 1.18 VS/cm, and the nitrogen removal efficiency increased by 53.9 %. Besides, due to the superior electrochemical properties and biocompatibility, the 3D printed biocarriers effectively enriched the electroactive denitrifying bacteria genus Trichococcus, thus supporting its excellent denitrification performance. This study provided novel insights into the development of new functional biocarriers in the wastewater treatment, thereby providing scientific guidance for practical engineering.

摘要

由于传统生物载体空间结构和表面电荷特性考虑不足,其微生物富集能力有限。在这里,我们利用 3D 打印技术制造高分辨率材料的能力,进一步设计了带正电荷的海藻酸钠/ε-聚赖氨酸(SA/ε-PL)打印墨水,并构建了具有理想孔结构和丰富正电荷的 3D 打印生物载体,以增强微生物富集。流变和力学测试证实,开发的 SA/ε-PL 墨水能够同时满足打印过程的顺畅挤出和 3D 结构的维持。利用 ε-PL 二次交联策略增强了 3D 机械结构,并赋予其作为生物载体应用所需的物理性能。与传统海绵载体相比,3D 打印生物载体具有更快的初始附着率和更高的生物量(14.58±1.18 VS/cm),脱氮效率提高了 53.9%。此外,由于具有卓越的电化学性能和生物相容性,3D 打印生物载体有效地富集了电活性反硝化细菌属 Trichococcus,从而支持其卓越的脱氮性能。本研究为开发新型功能生物载体提供了新的思路,为实际工程提供了科学指导。

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