Research on photocatalytic and degradation properties of SA hydrogel and advantages among photocatalytic materials

Authors

  • Mengyang Hai

DOI:

https://doi.org/10.61173/eavq7069

Keywords:

wastewater treatment, photocatalysts, sodium alginate (SA) hydrogel, metal ion-doped graphene hydrogel (MGH), adsorption

Abstract

Photocatalysts have attracted great research interest owing to their excellent properties and potential for simultaneously addressing challenges in wastewater treatment. For traditional photocatalytic materials, there are always some limitations. For example, their photocatalytic performance is limited due to their high band gap (UV range) and recombination time of photogenerated electron-hole pairs [1]. Additionally, photocatalytic materials face the challenges of secondary pollution to the environment and poor recycling performance. Hydrogel photocatalysts has been of high removal efficiency of water pollutants due to its adsorption capacities and good environmental compatibility. Hydrogels are macromolecular hydrophilic polymetric gels with cross-linked 3D structures that can easily entrap water molecules in their pores or interstitial spaces to swell up while remaining insoluble. Hydrogels exhibit high structural flexibility, chemical stability, elasticity and permeability, enhancing their water absorption capability. In this review, we will mainly focus on the photocatalytic degradation properties of sodium alginate (SA) hydrogel and explore its further application in wastewater treatment (dye degradation). Also, we compare the metal-ion-doped graphene hydrogel (MGH) with SA hydrogel in efficiency, conditions control and further prospects etc.

References

[1] Kumari H, Sonia, Suman, et al. A Review on Photocatalysis Used for Wastewater Treatment: Dye Degradation. Water Air Soil Pollut. 2023, 234(6): 349.

[2] P. Chen, P. Zhang, Y. Cui et al. Recent progress in copperbased inorganic nanostructure photocatalysts: properties, synthesis and photocatalysis applications. Materials Today Sustainability, 2023, 21 :100276.

[3] Wenwei Lei, Norihiro Suzuki, Chiaki Terashima, et al. Hydrogel photocatalysts for efficient energy conversion and environmental treatment. Frontiers in Energy, 2021, 15(3): 577- 595.

[4] Yu Changjiang, Yan Yangjie, Ling Yu, et al. Research Progress of Preparation of Sodium Alginate Composite Adsorption Materials. Journal of Hainan Normal University (Natural Science), 2017, 30: 157.

[5] Yujie Ma. Regulation and Photocatalytic Properties of Cuprous Oxide-Based Nanoatructures. Ph.D. Dissertation, Shanghai Jiao Tong University, 2018.

[6] Jiang W, Liu Y, Wang J, et al. Separation-free polyaniline/ TiO2 3D hydrogel with high photocatalytic activity. Advanced Materials Interfaces, 2016, 3(3): 1500502.

[7] Jixing Liu, Yuhao Du, Jian Liu, et al. Design of MoFe/Beta@ CeO2 catalysts with a core−shell structure and their catalytic performances for the selective catalytic reduction of NO with NH3. Applied Catalysis B: Envionmental, 2017, 203 : 704-714.

[8] Deng Xiaomei, Wen Hao, Zhang Chu-hong, et al. Preparation of Three-dimensional Porous Reduced Graphene Oxide Aerogel and Its Application in Lithium-ion Batteries. Chinese Journal of Synthetic Chemistry, 2016, 24(4): 302-307.

[9] He Y.L., Li J. H., Li L.F., et al. Gamma-rayirradiationinducedre-ductionandself-assemblyof grapheme oxide into threedimension algraphene aerogel. Materials Letters, 2016,177: 76- 79.

[10] Yan Yingshan, Sun Hongyu, Deng Hui, et al. Photocatalytic degradation of Rhodamine dye by La(Ⅲ)-doped graphene hydrogel. Ying Ran, 2018, 44(21): 48-52

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Published

2024-12-31