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生物炭负载Fe3O4对猪粪厌氧消化中重金属Cu、Zn形态的影响 被引量:9
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作者 刘春软 童巧 +1 位作者 李玉成 王宁 《环境污染与防治》 CAS CSCD 北大核心 2019年第11期1291-1296,1303,共7页
为研究生物炭(BC)负载Fe3O4对猪粪厌氧消化中重金属形态的影响,采用化学共沉淀法将Fe^2+/Fe^3+和水稻秸秆BC复合制备Fe3O4/BC复合材料,将其作为钝化剂添加到以猪粪为原料的厌氧消化反应中。通过Tessier连续提取法与pH-依赖性浸出试验,探... 为研究生物炭(BC)负载Fe3O4对猪粪厌氧消化中重金属形态的影响,采用化学共沉淀法将Fe^2+/Fe^3+和水稻秸秆BC复合制备Fe3O4/BC复合材料,将其作为钝化剂添加到以猪粪为原料的厌氧消化反应中。通过Tessier连续提取法与pH-依赖性浸出试验,探究BC和Fe3O4/BC对重金属形态的影响以及不同pH条件下沼渣中重金属浸出浓度的变化。结果表明,添加Fe3O4/BC对Cu和Zn的钝化效果更显著,与空白对照(CK)相比,添加BC和Fe3O4/BC后Cu的残渣态质量分数分别增加了-10.46%和52.40%,Zn的残渣态质量分数分别增加了16.82%和42.14%。厌氧消化后沼渣的浸出试验表现出很强的pH依赖性,Cu、Zn浸出曲线呈现出“V形”,在中性环境中(pH6~8)Cu、Zn和溶解性有机质(DOM)的浸出浓度较低,在酸性(pH<6)和碱性(pH>8)环境中较高。在弱酸弱碱条件下(pH5~9),添加Fe3O4/BC后Cu和Zn的浸出浓度均低于添加BC的试验和CK组。因此,添加Fe3O4/BC可有效降低厌氧消化后沼渣中重金属的浸出风险。 展开更多
关键词 猪粪 fe 3o 4 /生物炭 厌氧消化 钝化 重金属 pH-依赖性浸出试验
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One-step synthesis of N-doped metal/biochar composite using NH_3-ambiance pyrolysis for efficient degradation and mineralization of Methylene Blue 被引量:8
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作者 Md Manik Mian Guijian Liu +5 位作者 Balal Yousaf Biao Fu Rafay Ahmed Qumber Abbas Mehr Ahmed Mujtaba Munir Liu Ruijia 《Journal of Environmental Sciences》 SCIE EI CAS CSCD 2019年第4期29-41,共13页
A series of new biochar-supported composite based on the combination of biochar and metallic nanoparticles(NPs)were produced through single-step pyrolysis of FeCl_3–Ti(OBu)_4 laden agar biomass under NH_3 environment... A series of new biochar-supported composite based on the combination of biochar and metallic nanoparticles(NPs)were produced through single-step pyrolysis of FeCl_3–Ti(OBu)_4 laden agar biomass under NH_3 environment.The physiochemical properties of composites were characterized thoroughly.It has found that heating temperature and N-doping through NH_3-ambiance pyrolysis significantly influence the visible-light sensitivity and bandgap energy of composites.The catalytic activities of composites were measured by degradation of Methylene Blue(MB)in the presence or absence of H_2O_2 and visible-light irradiation.Our best catalyst(N–TiO_2–Fe_3O_4-biochar)exhibits rapid and high MB removal competency(99.99%)via synergism of adsorption,photodegradation,and Fenton-like reaction.Continuous production of O_2U^-and UOH radicles performs MB degradation and mineralization,confirmed by scavenging experiments and degradation product analysis.The local trap state Ti^(3+),Fe_3O_4,and N-carbon of the catalyst acted as active sites.It has suggested that the Ti^(3+)and N-doped dense carbon layer improve charge separation and shuttle that prolonged photo-Fenton like reaction.Moreover,the catalyst is highly stable,collectible,and recyclable up to 5 cycles with high MB degradation efficiency.This work provides a new insight into the synthesis of highly visible-light sensitized biocharsupported photocatalyst through NH_3-ambiance pyrolysis of NPs-laden biomass. 展开更多
关键词 biochar-supported photocatalyst N–Tio2–fe3o4-biochar NH3-ambiance PYRoLYSIS METHYLENE Blue Photocatalysis
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壳聚糖复合磁性生物炭吸附去除水中Cu(Ⅱ)的性能和机理 被引量:7
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作者 李杰 高洪涛 《青岛科技大学学报(自然科学版)》 CAS 2018年第2期16-20,共5页
以粉碎松树枝粉末为原料高温热解制备生物炭,然后采用水热方法与Fe3O4和壳聚糖复合,制备复合吸附剂,并将其用于水中Cu(Ⅱ)的吸附去除。研究发现复合吸附剂可有效去除Cu(Ⅱ),反应1.5h后可达到吸附平衡,其最大平衡吸附量为74.83mg·g-... 以粉碎松树枝粉末为原料高温热解制备生物炭,然后采用水热方法与Fe3O4和壳聚糖复合,制备复合吸附剂,并将其用于水中Cu(Ⅱ)的吸附去除。研究发现复合吸附剂可有效去除Cu(Ⅱ),反应1.5h后可达到吸附平衡,其最大平衡吸附量为74.83mg·g-1。对其吸附机理研究表明,Cu(Ⅱ)在复合吸附剂表面的吸附过程包括表面扩散、颗粒内部扩散和吸附平衡扩散三个阶段,其吸附反应动力学可采用准二级反应动力学方程拟合,吸附等温线符合Langmuir模型。对其反应热力学研究表明Cu(Ⅱ)在复合生物炭表面的吸附主要为物理吸附。 展开更多
关键词 复合生物炭 Cu(Ⅱ) 吸附性能 吸附机理
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