Kim Ji Eun, Bhatia Shashi Kant, Song Hak Jin, Yoo Eunjin, Jeon Hyeon Jin, Yoon Jae-Yoon, Yang Yunjeong, Gurav Ranjit, Yang Yung-Hun, Kim Hyung Joo, Choi Yong-Keun
Department of Biological Engineering, Konkuk University, Seoul 05029, Republic of Korea.
Department of Biological Engineering, Konkuk University, Seoul 05029, Republic of Korea; The Academy of Applied Science and Technology, Konkuk University, Seoul 05029, Republic of Korea.
Bioresour Technol. 2020 Jun;306:123092. doi: 10.1016/j.biortech.2020.123092. Epub 2020 Mar 3.
The present study evaluates the physicochemical properties of maple leaf-derived biochars (M-BCs) produced at different pyrolytic temperatures (i.e., 350, 550, and 750 °C) and their adsorptive properties for tetracycline onto M-BCs. The increase in pyrolysis temperature to produce M-BCs led to a significant increase in the biochar's hydrophobicity, surface area, and calcite (CaCO) crystallization. The M-BC750 produced without functionalization or activation possessed a high calcite composition and a hydrophobic nature with lower O/C and H/C, hydroxyl groups (-OH) on the surface, and functional groups (i.e., O-containing) as H-bond acceptors. Among M-BCs, the M-BC750 present a highest TC adsorption capacity owing to possible mechanisms such as metal complexation, H-bonding, and hydrophobic interactions. The isotherm and kinetic models for TC adsorption followed the Freundlich models and pseudo-second-order models, respectively. M-BCs produced from the waste fallen maple leaves could be applied as low-cost environmental adsorbents for TC removal.
本研究评估了在不同热解温度(即350、550和750°C)下制备的枫叶衍生生物炭(M-BCs)的物理化学性质及其对四环素在M-BCs上的吸附特性。制备M-BCs时热解温度的升高导致生物炭的疏水性、表面积和方解石(CaCO)结晶显著增加。未经功能化或活化制备的M-BC750具有高方解石组成和疏水性,具有较低的O/C和H/C、表面羟基(-OH)以及作为氢键受体的官能团(即含O官能团)。在M-BCs中,M-BC750由于金属络合、氢键和疏水相互作用等可能机制而呈现出最高的四环素吸附容量。四环素吸附的等温线和动力学模型分别遵循Freundlich模型和准二级模型。由废弃落叶枫叶制备的M-BCs可作为低成本的环境吸附剂用于去除四环素。