以壳聚糖为生物质碳源,采用一步水热碳化法对凹凸棒石表面进行有机修饰,并采用扫描电镜(SEM)、拉曼(Raman)光谱、元素分析(EA)、X光电子能谱(XPS)、Zeta电势分析、热重分析(TGA)等对改性凹凸棒石进行表征分析.同时,通过静态吸附实验,研...以壳聚糖为生物质碳源,采用一步水热碳化法对凹凸棒石表面进行有机修饰,并采用扫描电镜(SEM)、拉曼(Raman)光谱、元素分析(EA)、X光电子能谱(XPS)、Zeta电势分析、热重分析(TGA)等对改性凹凸棒石进行表征分析.同时,通过静态吸附实验,研究了改性凹凸棒石对Cr(Ⅵ)吸附去除的性能,考察了温度对吸附性能的影响,探讨了吸附动力学和热力学规律.结果表明,改性凹凸棒石表面富含含氧基团和氨基等活性基团;对总铬的吸附行为符合准二级动力学方程;表观吸附活化能为13.4 k J·mol^(-1),表明既有静电吸附,也有配位吸附,且以静电吸附为主;对总铬的吸附等温线符合Langmuir方程.在温度为298、308、318和328 K时,最大吸附量分别为203.3、232.6、267.4和322.6 mg·g^(-1),说明改性凹凸棒石是一种新型环保高性能的除铬材料.在研究的温度范围内,ΔH^0为19.8 k J·mol^(-1),ΔG^0为-19.5^-23.7 k J·mol^(-1),ΔS^0为72.1~131.8 J·mol^(-1)·K^(-1),表明该吸附是一吸热的、自发的、熵增过程.展开更多
The initiation mechanism of the copolymerization of 2-vinylnaphthalene with maleic anhydride was studied under irradiation of 365 nm. The excited complex was formed from (1) the local excitation of 2-vinylnaphthalene ...The initiation mechanism of the copolymerization of 2-vinylnaphthalene with maleic anhydride was studied under irradiation of 365 nm. The excited complex was formed from (1) the local excitation of 2-vinylnaphthalene followed by the charge-transfer interaction with maleic anhydride and (2) the excitation of the ground state charge-transfer complex, and then it collapsed to 1,4-tetramethylene biradical for initiation. A1: 1 alternating copolymer was formed in different monomer feeds. Addition of benzophenone could greatly enhance the rate of copolymerization through energy-transfer mechanism.展开更多
文摘以壳聚糖为生物质碳源,采用一步水热碳化法对凹凸棒石表面进行有机修饰,并采用扫描电镜(SEM)、拉曼(Raman)光谱、元素分析(EA)、X光电子能谱(XPS)、Zeta电势分析、热重分析(TGA)等对改性凹凸棒石进行表征分析.同时,通过静态吸附实验,研究了改性凹凸棒石对Cr(Ⅵ)吸附去除的性能,考察了温度对吸附性能的影响,探讨了吸附动力学和热力学规律.结果表明,改性凹凸棒石表面富含含氧基团和氨基等活性基团;对总铬的吸附行为符合准二级动力学方程;表观吸附活化能为13.4 k J·mol^(-1),表明既有静电吸附,也有配位吸附,且以静电吸附为主;对总铬的吸附等温线符合Langmuir方程.在温度为298、308、318和328 K时,最大吸附量分别为203.3、232.6、267.4和322.6 mg·g^(-1),说明改性凹凸棒石是一种新型环保高性能的除铬材料.在研究的温度范围内,ΔH^0为19.8 k J·mol^(-1),ΔG^0为-19.5^-23.7 k J·mol^(-1),ΔS^0为72.1~131.8 J·mol^(-1)·K^(-1),表明该吸附是一吸热的、自发的、熵增过程.
基金Project Supported by the National Natural Science Foundation of China.
文摘The initiation mechanism of the copolymerization of 2-vinylnaphthalene with maleic anhydride was studied under irradiation of 365 nm. The excited complex was formed from (1) the local excitation of 2-vinylnaphthalene followed by the charge-transfer interaction with maleic anhydride and (2) the excitation of the ground state charge-transfer complex, and then it collapsed to 1,4-tetramethylene biradical for initiation. A1: 1 alternating copolymer was formed in different monomer feeds. Addition of benzophenone could greatly enhance the rate of copolymerization through energy-transfer mechanism.