柠檬酸优化水热合成羟基磷灰石及矿井水除氟性能Synthesis of citric acid modified hydroxyapatite by hydrothermal method and its performance of defluoridation in mine water
赵佳昕,李文博,王吉坤
ZHAO Jiaxin,LI Wenbo,WANG Jikun
摘要(Abstract):
为了提高羟基磷灰石的分散性,通过水热法合成羟基磷灰石粉体。通过添加柠檬酸提高样品的分散度、降低晶粒尺寸,从而提高在模拟水样中的除氟效率。通过单因素试验和响应面法对羟基磷灰石的水热合成工艺条件进行主要参数优化,并利用红外光谱、扫描电镜、能量色散X射线光谱、比表面积及孔隙分析和X射线衍射仪等表征了不同柠檬酸添加比例下水热合成羟基磷灰石。结果表明,柠檬酸的加入会显著影响羟基磷灰石在纳米尺度下的微观形貌。利用Box-Behnken设计的3因素3水平响应面试验确定水热法合成羟基磷灰石的最佳参数为:水热温度147℃、水热时间8 h、柠檬酸添加量0.5%,在最佳工艺条件下,成功得到高分散度的纳米羟基磷灰石,针对模拟水样(氟离子质量浓度为6 mg/L)除氟效率达44.6%,除氟容量为2.678 mg/g,高于同等测试条件下的市售羟基磷灰石测试值(1.437 mg/g)。吸附过程的热力学研究表明,Langmuir等温模型拟合效果要优于Freundlich模型。计算热力学参数可知,所制备的羟基磷灰石对氟离子的吸附是自发(ΔG~0<0)、放热(ΔH~0<0)、熵增(ΔS~0>0)的过程。羟基磷灰石对氟离子的吸附符合准二级反应动力学过程。通过造粒成型及连续吸附装置对所制羟基磷灰石样品进行评价,出水氟离子质量浓度连续9 d保持在1.0 mg/L以下,该吸附剂具有良好除氟效果。
In order to improve the dispersibility of hydroxyapatite, hydrothermal method with citric acid as chelating agent was used to prepare hydroxyapatite with improved dispersibility and citric acid was added to improve the dispersion of the sample, reduce the grain size, and adsorb fluorine ions in simulated water samples. The main parameters of hydrothermal synthesis of hydroxyapatite were optimized by single factor test and response surface method. Hydroxyapatites with different ratio of citric acid were characterized by five techniques such as: X-ray Diffraction(XRD),Fourier Transform Infrared Spectroscopy(FT-IR),Scanning Electron Microscope(SEM),Nitrogen Adsorption/Desorption Experiment and Energy Dispersive Spectrometer(EDS). The results show that the addition of citric acid will significantly affect the micro morphology of hydroxyapatite in nano scale. Box-Behnken design with three-levels and three-factors has been applied to determine the optimal parameters such as hydrothermal time(4-8 h),temperature(140-160 ℃),citric acid dosage(0.5%-1.5%) on removal of fluoride from simulated solution. The results show that the optimal conditions are 147 ℃ of hydrothermal temperature, eight hours of hydrothermal time, and 0.5% of citric acid addition. Under the best process conditions, nano hydroxyapatite with high dispersion is successfully obtained. For simulated water samples(fluorine ion concentration is 6 mg/L),the fluoride removal efficiency reaches 44.6%,The fluoride removal capacity is 2.678 mg/g, which is higher than the test value of commercially available hydroxyapatite under the same test conditions(1.437 mg/g). According to thermodynamic parameters, adsorption of fluoride is a spontaneous process(ΔG~0<0) with reduced endothermic(ΔH~0<0) and increased entropy(ΔS~0>0).The kinetic simulation of fluoride absorption by hydroxyapatite is conformed to pseudo second-order kinetics. The prepared hydroxyapatite samples were made into particles and evaluated by continuous adsorption device. The fluoride concentration in the effluent remained below 1.0 mg/L for 9 days, which means the hydroxyapatite made in lab has a significant removal effect of fluoride.
关键词(KeyWords):
水热合成;响应面法;羟基磷灰石;柠檬酸;除氟;吸附热力学;吸附动力学
hydrothermal synthesis;response surface methodology;hydroxyapatite;citric acid;defluorination;adsorption thermodynamics;adsorption kinetic
基金项目(Foundation): 煤炭科学技术研究院有限公司科技发展基金资助项目(2021CX-Ⅰ-01)
作者(Author):
赵佳昕,李文博,王吉坤
ZHAO Jiaxin,LI Wenbo,WANG Jikun
DOI: 10.13226/j.issn.1006-6772.21100811
参考文献(References):
- [1] 马剑,马小真.煤矿矿井水资源化及综合利用的实践思考[J].中国资源综合利用,2019,37(12):62-64.MA Jian,MA Xiaozhen.Practical thinking on water resources utilization and comprehensive utilization in coal mine[J].China Resources Comprehensive Utilization,2019,37(12):62-64.
- [2] 曹庆一,任文颖,陈思瑶,等.煤矿矿井水处理技术与利用现状[J].能源与环保,2020,42(3):100-104.CAO Qingyi,REN Wenying,CHEN Siyao,et al.Coal mine water treatment technology and utilization status[J].China Energy and Environmental Protection,2020,42(3):100-104.
- [3] 孙亚军,陈歌,徐智敏,等.我国煤矿区水环境现状及矿井水处理利用研究进展[J].煤炭学报,2020,45(1):304-316.SUN Yajun,CHEN Ge,XU Zhimin,et al.Research progress of water environment,treatment and utilization in coal mining areas of China[J].Journal of China Coal Society,2020,45(1):304-316.
- [4] 苏双青,赵焰,徐志清,等.我国煤矿矿井水氟污染现状及除氟技术研究[J].能源与环保,2020,42(11):5-10.SU Shuangqing,ZHAO Yan,XU Zhiqing,et al.Status quo of fluoride pollution of coal mine water in China and research on fluoride removal technology[J].China Energy and Environmental Protection,2020,42(11):5-10.
- [5] 王文静,仲丽娟,黄保平,等.地表水强化混凝除氟方案[J].净水技术,2020,39(3):95-98.WANG Wenjing,ZHONG Lijuan,HUANG Baoping,et al.Solutions of fluoride removal of surface water by enhanced coagulation process[J].Water Purification Technology,2020,39(3):95-98.
- [6] MARTYNA Grzegorzek,KATARZYNA Majewska Nowak.The use of micellar-enhanced ultrafiltration (MEUF) for fluoride removal from aqueous solutions[J].Separation and Purification Technology,2018,195(1):54-61.
- [7] 张浩,李诚,顾悦,等.电絮凝法同步去除地下水中砷、锰、氟的效能及机理[J].工业水处理,2021,41(7):121-125.ZHANG Hao,LI Cheng,GU Yue,et al.Performance and mechanism of simultaneous removal of arsenic,manganese and fluorine from groundwater by electro-flocculation[J].Industrial Water Treatment,2021,41(7):121-125.
- [8] MUHAMMAD K S,JUN Y K,YOUNG G C.Synthesis of bone char from cattle bones and its application for fluoride removal from the contaminated water[J].Groundwater for Sustainable Development,2019,8(1):1-9.
- [9] JEONG S,KIM D,YOON H O.Stabilization of fluorine in soil using calcium hydroxide and its potential human health risk[J].Environmental Engineering Research,2019,24(4):654-661.
- [10] ANASTASIOS I,MITSIONIS,TIVERIOS C.The effect of citric acid on the sintering of calcium phosphate bioceramics[J].Ceramics International,2010,36(1):623-634.
- [11] SKWAREK E,JANUSZ W,STERNIK D.Adsorption of citrate ions on hydroxyapatite synthetized by various methods [J].Journal of Radioanalytical and Nuclear Chemistry,2014,299(1):2027-2036.
- [12] JIN X Y,ZHUANG J Z,ZHANG Z.Hydrothermal synthesis of hydroxyapatite nanorods in the presence of sodium citrate and its aqueous colloidal stability evaluation in neutral pH[J].Journal of Colloid and Interface Science,2015,443:125-130.
- [13] HUANG Shaomeng,HU Minglei,DAN Li,et al.Fluoride sorptionfrom aqueous solution using Al(OH)3-modified hydroxyapatite nanosheet[J].Fuel,2020,279(1):1-11.
- [14] 马艺娟,郝丽静,杜绍龙.柠檬酸钠调控水热合成羟基磷灰石微球[J].无机材料学报,2014,29(3):284-288.MA Yijuan,HAO Lijing,DU Shaolong,et al.Synthesis of hydroxyapatite microspheres by hydro-thermal method under the control of sodium citrate[J].Journal of Inorganic Materials,2014,29(3):284-288.
- [15] 全沁果,杨明,林菲,等.响应面法优化鸡蛋壳柠檬酸钙的制备工艺[J].核农学报,2016,30(1):79-85.QUAN Qinguo,YANG Ming,LIN Fei,et al.Optimization on the preparation of calcium citrate from eggshells with response surface methodology[J].Journal of Nuclear Agricultural Sciences,2016,30(1):79-85.
- [16] LEEUWENBURGH S C G,ANA I D,JANSEN J A.Sodium citr-ate as an effective dispersant for the synthesis of inorganic-organic composites with a nano-dispersed mineral phase [J],Acta Biomaterialia,2010,6(1):836-844.
- [17] XU F G,JIANG C Y,Li D.Defluoridation of wastewaters usingHAP-coated-limestone[J].Separation Science and Technology,2019,54(14):1-8.
- [18] 常青,茹洪强,喻亮.柠檬酸对Ca(NO3)2-P2O5体系合成羟基磷灰石粉体的影响[J].东北大学学报(自然科学版),2011,32(1):85-93.CHANG Qing,RU Hongqiang,YU Liang.Influence of citric acid on synthesis of powdered hydroxyapatite with Ca(NO3)2-P2O5 system[J].Journal of Northeastern University (Natural Science),2011,32(1):85-93.
- [19] 仇满德,杨盼,代爱梅,等.水热体系中表面活性剂对合成羟基磷灰石晶体的影响[J].人工晶体学报,2015,44(4):1137-1142.QIU Mande,YANG Pan,DAI Aimei,et al.Effect of surfactants on the crystals of synthetic hydroxyapatite in the hydrothermal system [J].Journal of Synthetic Crystals,2015,44(4):1137-1142.
- [20] 黄志良,刘羽,胥焕岩.磷灰石矿物材料[M].北京:化学工业出版社,2008:228-229.
- [21] XU B,ZHANG Y,WANG J.Hydrogeochemistry and human hea-lth risks of groundwater fluoride in Jinhuiqu irrigation district of Wei River basin,China[J].Human & Ecological Risk Assessment,2019,25(1/2):230-249.
- [22] SUN J Y,CAI S,WEI J L.Corrosion resistance and rapid mineralization of hydroxyapatite coated magnesium alloy prepared by hydrothermal method[J].Journal of the Chinese Ceramic Society,2020,48(6):810-817.
- [23] 齐美丽,肖桂勇,吕宇鹏.氨基酸对水热合成羟基磷灰石纤维形貌的影响[J].材料工程,2017,45(5):46-51.QI Meili,XIAO Guipeng,LYU Yupeng.Effect of amino acids on morphology of hydrothermally synthesized hydroxyapatite fibers[J].Journal of Materials Engineering,2017,45(5):46-51.
- [24] 朱研,徐玲玲,刘晨辉.表面活性剂对合成羟基磷灰石晶体的影响[J].南京工业大学学报(自然科学版),2020,42(1):87-93.ZHU Yan,XU Lingling,LIU Chenhui.Effects of surfactants on the crystal of synthetic hydroxyapatite[J].Journal of Nanjing Tech University (Natural Science Edition),2020,42(1):87-93.
- [25] LI X Y,ZHU J X,SUN T T,et al.Preparation and molding of rare earth magnesia composite fluorine adsorbent [J].Fine Chemicals,2020,37(1):147-155.
- [26] WEI W,WANG X,WANG Y,et al.Evaluation of removal efficiency of fluoride from aqueous solution using nanosized fluorapatite[J].Desalination and Water Treatment,2014,52(1):31-33.
- [27] HUANG S M,HUA M L,LI D,et al.Fluoride sorption from aqueous solution using Al(OH)3-modified hydroxyapatite nanosheet[J].Fuel,2020,279:118486.
- [28] AMRUTA S,BISHNUPRIYA N,PRAMILA K.Kinetics and me-chanistic interpretation of fluoride removal by nanocrystalline hydroxyapatite derived fromLimacine artica shells[J].Journal of Environmental Chemical Engineering,2017,5(1):5429-5438.
- [29] JAVIER A,ALFREDO I,JOSE R,et al.Synergistic effect of zeolite/chitosan in the removal of fluoride from aqueous solution[J].Environmental Technology,2020,41(12):1554-1567.
- [30] WIMALASIRI K,FERNANDO M,WILLIAMS R,et al.Microwa-ve assisted accelerated fluoride adsorption by porous nano-hydro-xyapatite[J].Materials Chemistry and Physics,2021,257(1):12312.