Guo Jinxin, Guo Xiaoman, Yang Haiyan, Zhang Daohong, Jiang Xiaogeng
Tianjin Key Laboratory of Aquatic Science and Technology, School of Environmental and Municipal Engineering, Tianjin Chengjian University, Jinjing Road 26, Tianjin 300384, China.
School of Mechanical Engineering, Tiangong University, Tianjin 300387, China.
Materials (Basel). 2023 May 22;16(10):3882. doi: 10.3390/ma16103882.
Microalgae have been widely employed in water pollution treatment since they are eco-friendly and economical. However, the relatively slow treatment rate and low toxic tolerance have seriously limited their utilization in numerous conditions. In light of the problems above, a novel biosynthetic titanium dioxide (bio-TiO NPs)-microalgae synergetic system (Bio-TiO/Algae complex) has been established and adopted for phenol degradation in the study. The great biocompatibility of bio-TiO NPs ensured the collaboration with microalgae, improving the phenol degradation rate by 2.27 times compared to that with single microalgae. Remarkably, this system increased the toxicity tolerance of microalgae, represented as promoted extracellular polymeric substances EPS secretion (5.79 times than single algae), and significantly reduced the levels of malondialdehyde and superoxide dismutase. The boosted phenol biodegradation with Bio-TiO/Algae complex may be attributed to the synergetic interaction of bio-TiO NPs and microalgae, which led to the decreased bandgap, suppressed recombination rate, and accelerated electron transfer (showed as low electron transfer resistance, larger capacitance, and higher exchange current density), resulting in increased light energy utilization rate and photocatalytic rate. The results of the work provide a new understanding of the low-carbon treatment of toxic organic wastewater and lay a foundation for further remediation application.
微藻因其生态友好且经济,已被广泛应用于水污染处理。然而,相对较慢的处理速率和较低的毒性耐受性严重限制了它们在许多情况下的应用。鉴于上述问题,本研究建立了一种新型的生物合成二氧化钛(bio-TiO NPs)-微藻协同系统(Bio-TiO/藻类复合体)并用于苯酚降解。bio-TiO NPs良好的生物相容性确保了与微藻的协同作用,与单一微藻相比,苯酚降解率提高了2.27倍。值得注意的是,该系统提高了微藻的毒性耐受性,表现为促进了胞外聚合物EPS的分泌(是单一藻类的5.79倍),并显著降低了丙二醛和超氧化物歧化酶的水平。Bio-TiO/藻类复合体对苯酚生物降解的促进作用可能归因于bio-TiO NPs与微藻的协同相互作用,这导致带隙减小、复合率降低以及电子转移加速(表现为低电子转移电阻、更大的电容和更高的交换电流密度),从而提高了光能利用率和光催化速率。该研究结果为有毒有机废水的低碳处理提供了新的认识,并为进一步的修复应用奠定了基础。