改性玉米秸秆炭和花生壳炭对溶液中Cd2+的吸附

邓潇, 周航, 陈珊, 陈齐, 彭佩钦, 廖柏寒, 张平. 改性玉米秸秆炭和花生壳炭对溶液中Cd2+的吸附[J]. 环境工程学报, 2016, 10(11): 6325-6331. doi: 10.12030/j.cjee.201506157
引用本文: 邓潇, 周航, 陈珊, 陈齐, 彭佩钦, 廖柏寒, 张平. 改性玉米秸秆炭和花生壳炭对溶液中Cd2+的吸附[J]. 环境工程学报, 2016, 10(11): 6325-6331. doi: 10.12030/j.cjee.201506157
DENG Xiao, ZHOU Hang, CHEN Shan, CHEN Qi, PENG Peiqin, LIAO Bohan, ZHANG Ping. Adsorption of Cd2+from aqueous solution by modified corn straw biochar and peanut shell biochar[J]. Chinese Journal of Environmental Engineering, 2016, 10(11): 6325-6331. doi: 10.12030/j.cjee.201506157
Citation: DENG Xiao, ZHOU Hang, CHEN Shan, CHEN Qi, PENG Peiqin, LIAO Bohan, ZHANG Ping. Adsorption of Cd2+from aqueous solution by modified corn straw biochar and peanut shell biochar[J]. Chinese Journal of Environmental Engineering, 2016, 10(11): 6325-6331. doi: 10.12030/j.cjee.201506157

改性玉米秸秆炭和花生壳炭对溶液中Cd2+的吸附

  • 基金项目:

    农业部与财政部专项(农办财函[2014]28号)

    湖南省环境科学重点学科建设项目(2006180)

Adsorption of Cd2+from aqueous solution by modified corn straw biochar and peanut shell biochar

  • Fund Project:
  • 摘要: 对玉米秸秆和花生壳炭化制备的生物炭,运用高锰酸钾进行改性,研究其对Cd2+的吸附效果。通过批次吸附实验,考察了两种改性生物炭对Cd2+吸附的初始浓度、pH值、接触时间等因素的影响。结果表明,在pH为6.0,Cd2+浓度为100 mg·L-1,温度为20℃,吸附时间为12 h,吸附剂投加量为1.0 g·L-1条件下,改性玉米秸秆炭和花生壳炭对Cd2+的去除率分别为67.03%和46.10%,与未改性的生物炭相比,吸附率分别提高了3.8倍和6.2倍。改性玉米秸秆炭和花生壳炭对溶液中Cd2+的吸附均符合Langmuir和Freundlich等温吸附模型,最大吸附量分别为68.97和55.55 mg·g-1。两种改性生物炭的吸附行为均符合准二级吸附动力学模型,说明其吸附以化学吸附为主。改性玉米秸秆炭和花生壳炭吸附Cd2+后,可用NaOH溶液进行解吸,解吸4次后,对Cd2+仍有较好的吸附效果,吸附量分别为31.40和24.10 mg·g-1。这说明,高锰酸钾改性玉米秸秆炭和花生壳炭是一种吸附性能高且能够重复利用的去除溶液中Cd2+的吸附材料。
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  • [1] KALKAN E., NADAROGLU H., DIKBAS N., et al. Bacteria-modified red mud for adsorption of cadmium ions from aqueous solutions. Polish Journal of Environmental Studies, 2013, 22(2): 417-429
    [2] SATOH-NAGASAWA N., MORI M., NAKAZAWA N., et al. Mutations in rice (Oryza sativa) heavy metal ATPase 2(OsHMA2) restrict the translocation of zinc and cadmium. Plant and Cell Physiology, 2012, 53(1): 213-224
    [3] 邹照华, 何素芳, 韩彩芸, 等. 重金属废水处理技术研究进展. 水处理技术, 2010, 36(6): 17-21 ZOU Zhaohua, HE Sufang, HAN Caiyun, et al. Progress of heavy metals liquid waste processing technique. Technology of Water Treatment, 2010, 36(6): 17-21(in Chinese)
    [4] 文一波. 发展适合中国国情的城市污水处理技术. 环境保护, 1999(5): 26-27 WEN Yibo. To develop sewage treatment technology suiting for China. Environmental Protection, 1999(5): 26-27(in Chinese)
    [5] 王建龙, 陈灿. 生物吸附法去除重金属离子的研究进展. 环境科学学报, 2010, 30(4): 673-701 WANG Jianlong, CHEN Can. Research advances in heavy metal removal by biosorption. Acta Scientiae Circumstantiae, 2010, 30(4): 673-701(in Chinese)
    [6] 王宁, 侯艳伟, 彭静静, 等. 生物炭吸附有机污染物的研究进展. 环境化学, 2012, 31(3): 287-295 WANG Ning, HOU Yanwei, PENG Jingjing, et al. Research progess on sorption of orgnic contaminants to biochar. Environmental Chemistry, 2012, 31(3): 287-295(in Chinese)
    [7] 李力, 刘娅, 陆宇超, 等. 生物炭的环境效应及其应用的研究进展. 环境化学, 2011, 30(8): 1411-1421 LI Li, LIU Ya, LU Yuchao, et al. Review on environmental effects and applications of biochar. Environmental Chemistry, 2011, 30(8): 1411-1421(in Chinese)
    [8] 何绪生, 张树清, 佘雕, 等. 生物炭对土壤肥料的作用及未来研究. 中国农学通报, 2011, 27(15): 16-25 HE Xusheng, ZHANG Shuqing, SHE Diao, et al. Effects of biochar on soil and fertilizer and future research. Chinese Agricultural Science Bulletin, 2011, 27(15): 16-25(in Chinese)
    [9] 陈温福, 张伟明, 孟军, 等. 生物炭应用技术研究. 中国工程科学, 2011, 13(2): 83-89 CHEN Wenfu, ZHANG Weiming, MENG Jun, et al. Researches on biochar application technology. Engineering Sciences, 2011, 13(2): 83-89(in Chinese)
    [10] 耿勤, 张平, 廖柏寒, 等. 生物质炭对溶液中Cd2+的吸附. 环境工程学报, 2015, 9(4): 1675-1679 GENG Qin, ZHANG Ping, LIAO Bohan, et al. Adsorption of Cd2+in aqueous solution by biochars. Chinese Journal of Environmental Engineering, 2015, 9(4): 1675-1679(in Chinese)
    [11] 徐楠楠, 林大松, 徐应明, 等. 玉米秸秆生物炭对Cd2+的吸附特性及影响因素. 农业环境科学学报, 2014, 33(5): 958-964 XU Nannan, LIN Dasong, XU Yingming, et al. Adsorption of aquatic Cd2+ by biochar obtained from corn stover. Journal of Agro-Environment Science, 2014, 33(5): 958-964(in Chinese)
    [12] 刘莹莹, 秦海芝, 李恋卿, 等. 不同作物原料热裂解生物质炭对溶液中Cd2+和Pb2+的吸附特性. 生态环境学报, 2012, 21(1): 146-152 LIU Yingying, QIN Haizhi, LI Lianqing, et al. Adsorption of Cd2+ and Pb2+ in aqueous solution by biochars produced from the pyrolysis of different crop feedstock. Ecology and Environmental Sciences, 2012, 21(1): 146-152(in Chinese)
    [13] 梁霞, 王学江. 活性炭改性方法及其在水处理中的应用. 水处理技术, 2011, 37(8): 1-6 LIANG Xia, WANG Xuejiang. The technology of activated carbon modification and its application in wastewater treatment. Technology of Water Treatment, 2011, 37(8): 1-6(in Chinese)
    [14] 伍喜庆, 黄志华. 改性活性炭吸附金的性能. 中国有色金属学报, 2005, 15(1): 129-132 WU Xiqing, HUANG Zhihua. Adsorption of gold on modified activated carbon. The Chinese Journal of Nonferrous Metals, 2005, 15(1): 129-132(in Chinese)
    [15] 林芳芳, 易筱筠, 党志, 等. 改性花生壳对水中Cd2+和Pb2+的吸附研究. 农业环境科学学报, 2011, 30(7): 1404-1408 LIN Fangfang, YI Xiaoyun, DANG Zhi, et al. Adsorption of Cd2+ and Pb2+ from aqueous solution by modified peanut shells. Journal of Agro-Environment Science, 2011, 30(7): 1404-1408(in Chinese)
    [16] 丁春生, 诸钱芬, 卢敬科, 等. 高锰酸钾改性活性炭的制备、表征及其吸附Pb2+的特性. 城市环境与城市生态, 2011, 24(1): 42-46 DING Chunsheng, ZHU Qianfen, LU Jingke, et al. Preparation and characterization of activated carbon modified by KMnO4 and its Pb2+ adsorption capability. Urban Environment & Urban Ecology, 2011, 24(1): 42-46(in Chinese)
    [17] 王家强. 生物吸附法去除重金属的研究. 长沙: 湖南大学硕士学位论文, 2010 WANG Jiaqiang. The study of heavy metal removal by biosorption. Changsha: Master Dissertation of Hunan University, 2010(in Chinese)
    [18] 陈钰, 龚正君, 杨顺生, 等. 改性玉米秸秆吸附Cu2+的动力学和热力学. 环境工程学报, 2013, 7(2): 523-529 CHEN Yu, GONG Zhengjun, YANG Shunsheng, et al. Kinetics and thermodynamics for Cu2+ adsorption by modified corn straw. Chinese Journal of Environmental Engineering, 2013, 7(2): 523-529(in Chinese)
    [19] 张永清, 吴清平, 张菊梅, 等. 活性炭对水中溴酸盐吸附性能研究. 水处理技术, 2014, 40(6): 36-38 ZHANG Yongqing, WU Qingping, ZHANG Jumei, et al. Study on adsorption of bromate from water by granular activated carbon. Technology of Water Treatment, 2014, 40(6): 36-38(in Chinese)
    [20] 张再利, 况群, 贾晓珊. 花生壳吸附Pb2+、Cu2+、Cr3+、Cd2+、Ni2+的动力学和热力学研究. 生态环境学报, 2010, 19(12): 2973-2977 ZHANG Zaili, KUANG Qun, JIA Xiaoshan. Study on the kinetics and thermodynamics of Pb2+, Cu2+, Cr3+, Cd2+, Ni2+adsorption onto peanut hull. Ecology and Environmental Sciences, 2010, 19(12): 2973-2977(in Chinese)
    [21] 郝硕硕, 朱家亮, 黄慧, 等. 改性沸石对Cd(Ⅱ)的吸附平衡及动力学. 环境工程学报, 2012, 6(8): 2693-2697 HAO Shuoshuo, ZHU Jialiang, HUANG Hui, et al. Cd(Ⅱ) adsorption equilibrium and kinetics by modified zeolites. Chinese Journal of Environmental Engineering, 2012, 6(8): 2693-2697(in Chinese)
    [22] 金兰淑, 高湘骐, 刘洋, 等. 4A沸石对复合污染水体中Pb2+、Cu2+和Cd2+的去除. 环境工程学报, 2012, 6(5): 1599-1603 JIN Lanshu, GAO Xiangqi, LIUyang, et al. Removal of Pb2+, Cu2+ and Cd2+ from composite pollution aqueous solution by zeolite 4A. Chinese Journal of Environmental Engineering, 2012, 6(5): 1599-1603(in Chinese)
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出版历程
  • 收稿日期:  2015-07-30
  • 刊出日期:  2016-11-26
邓潇, 周航, 陈珊, 陈齐, 彭佩钦, 廖柏寒, 张平. 改性玉米秸秆炭和花生壳炭对溶液中Cd2+的吸附[J]. 环境工程学报, 2016, 10(11): 6325-6331. doi: 10.12030/j.cjee.201506157
引用本文: 邓潇, 周航, 陈珊, 陈齐, 彭佩钦, 廖柏寒, 张平. 改性玉米秸秆炭和花生壳炭对溶液中Cd2+的吸附[J]. 环境工程学报, 2016, 10(11): 6325-6331. doi: 10.12030/j.cjee.201506157
DENG Xiao, ZHOU Hang, CHEN Shan, CHEN Qi, PENG Peiqin, LIAO Bohan, ZHANG Ping. Adsorption of Cd2+from aqueous solution by modified corn straw biochar and peanut shell biochar[J]. Chinese Journal of Environmental Engineering, 2016, 10(11): 6325-6331. doi: 10.12030/j.cjee.201506157
Citation: DENG Xiao, ZHOU Hang, CHEN Shan, CHEN Qi, PENG Peiqin, LIAO Bohan, ZHANG Ping. Adsorption of Cd2+from aqueous solution by modified corn straw biochar and peanut shell biochar[J]. Chinese Journal of Environmental Engineering, 2016, 10(11): 6325-6331. doi: 10.12030/j.cjee.201506157

改性玉米秸秆炭和花生壳炭对溶液中Cd2+的吸附

  • 1. 中南林业科技大学环境科学与工程学院, 长沙 410004
基金项目:

农业部与财政部专项(农办财函[2014]28号)

湖南省环境科学重点学科建设项目(2006180)

摘要: 对玉米秸秆和花生壳炭化制备的生物炭,运用高锰酸钾进行改性,研究其对Cd2+的吸附效果。通过批次吸附实验,考察了两种改性生物炭对Cd2+吸附的初始浓度、pH值、接触时间等因素的影响。结果表明,在pH为6.0,Cd2+浓度为100 mg·L-1,温度为20℃,吸附时间为12 h,吸附剂投加量为1.0 g·L-1条件下,改性玉米秸秆炭和花生壳炭对Cd2+的去除率分别为67.03%和46.10%,与未改性的生物炭相比,吸附率分别提高了3.8倍和6.2倍。改性玉米秸秆炭和花生壳炭对溶液中Cd2+的吸附均符合Langmuir和Freundlich等温吸附模型,最大吸附量分别为68.97和55.55 mg·g-1。两种改性生物炭的吸附行为均符合准二级吸附动力学模型,说明其吸附以化学吸附为主。改性玉米秸秆炭和花生壳炭吸附Cd2+后,可用NaOH溶液进行解吸,解吸4次后,对Cd2+仍有较好的吸附效果,吸附量分别为31.40和24.10 mg·g-1。这说明,高锰酸钾改性玉米秸秆炭和花生壳炭是一种吸附性能高且能够重复利用的去除溶液中Cd2+的吸附材料。

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