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Article

Fabrication of Mg-Doped Sargassum Biochar for Phosphate and Ammonium Recovery

Department of Environmental Research, Korea Institute of Civil Engineering and Building Technology, Goyang-daero 283, Ilsanseo-gu, Goyang-si 10223, Gyeonggi-do, Korea
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Author to whom correspondence should be addressed.
Sustainability 2021, 13(22), 12752; https://doi.org/10.3390/su132212752
Submission received: 29 September 2021 / Revised: 3 November 2021 / Accepted: 4 November 2021 / Published: 18 November 2021
(This article belongs to the Collection Advances in Biomass Waste Valorization)

Abstract

Biochars prepared from macro-algae have a lower C/N ratio compared to lignocellulosic biochar, which is advantageous for direct nutrition. In particular, Sargassum, a marine macro-algae, has a high Mg content; hence, it can be expected to adsorb P and N simultaneously. In this study, Sargassum horneri biochar (SB), pyrolyzed at 400, 500, and 600 °C, was doped with innate Mg through water leaching, and nutrient recovery from the wastewater-mimicking solution was confirmed. The biochar pyrolyzed at 600 °C showed maximum Mg adsorption during water leaching, and the efficiency of K and Na removal was also high, at 92.7% and 91.9%, respectively. The addition of MgCl2 during pyrolysis and high ion exchange did not show distinct advantages for surface modification and nutrient adsorption. X-ray photoelectron spectroscopy analysis confirmed the participation of biochar in the surface adsorption of Mg and PO4 recovery. The PO4 sorption capacity of biochar reached >120 mg·g−1, while the sorption capacity for NH4 was low, at 22.8–28.2 mg·g−1, suggesting that Mg-surface-doped SB presented excellent phosphorus recovery. Hence, upgrading an adsorbent as a wastewater-treatment material and soil ameliorant that recovers nutrients using innate Mg from Sargassum is possible through appropriate surface modification.
Keywords: phosphate recovery; ammonia recovery; Mg doping; Sargassum horneri; algal biochar phosphate recovery; ammonia recovery; Mg doping; Sargassum horneri; algal biochar

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MDPI and ACS Style

Lee, Y.-E.; Jeong, Y.; Shin, D.-C.; Ahn, K.-H.; Jung, J.-H.; Kim, I.-T. Fabrication of Mg-Doped Sargassum Biochar for Phosphate and Ammonium Recovery. Sustainability 2021, 13, 12752. https://doi.org/10.3390/su132212752

AMA Style

Lee Y-E, Jeong Y, Shin D-C, Ahn K-H, Jung J-H, Kim I-T. Fabrication of Mg-Doped Sargassum Biochar for Phosphate and Ammonium Recovery. Sustainability. 2021; 13(22):12752. https://doi.org/10.3390/su132212752

Chicago/Turabian Style

Lee, Ye-Eun, Yoonah Jeong, Dong-Chul Shin, Kwang-Ho Ahn, Jin-Hong Jung, and I-Tae Kim. 2021. "Fabrication of Mg-Doped Sargassum Biochar for Phosphate and Ammonium Recovery" Sustainability 13, no. 22: 12752. https://doi.org/10.3390/su132212752

APA Style

Lee, Y.-E., Jeong, Y., Shin, D.-C., Ahn, K.-H., Jung, J.-H., & Kim, I.-T. (2021). Fabrication of Mg-Doped Sargassum Biochar for Phosphate and Ammonium Recovery. Sustainability, 13(22), 12752. https://doi.org/10.3390/su132212752

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