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1.
用巯基乙酸作为巯基化剂,对壳聚糖进行改性,选择了巯基化的条件.实验表明,在浓度为188mg/L的铜溶液中,CTS-SH的最大吸附率达90.3%以上,吸附容量为27.76mg/g,在浓度为203mg/L的铅溶液中,对铅的最大吸附率达到99%以上,在浓度为1.015g/L的铅溶液中,最大吸附率达95.5%.此时的吸附容量为97.4mg/g,吸附容量大于147.2mg/g时的吸附率为36.3%.经XRD及EMS图片的分析,可以看出,改性壳聚糖在吸附前后,结构发生了改变.  相似文献   

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建立了中孔分子筛SBA-15-NH2分离富集火焰原子吸收光谱法测定痕量钯的新方法,探讨了中孔分子筛SBA-15-NH2材料吸附钯的原理和最佳条件.在pH 3.0、温度为(15±1) ℃的条件下,钯可被该材料定量吸附,其吸附容量为1.21 mg/g.吸附的钯用饱和硫脲溶液洗脱,并用火焰原子吸收法测定洗脱的钯.该方法测定钯的检出限为0.59 μg/L(3σ,n=11),线性范围为0.002 ~1.2 mg/L,加标回收率为98% ~107%.对0.05 mg/L的Pd2+溶液平行测定7次,RSD为2.24%.方法用于烟花中痕量钯的测定,结果满意.  相似文献   

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用离子交换树脂法吸附柠檬酸溶液中的金属离子,苯乙烯系阳离子交换树脂的吸附性能较好,它对镍、铝离子的吸附容量均较大,且吸附前后柠檬酸溶液的浓度变化较小.静态条件下树脂对镍的吸附容量为16.83mg Ni/g干树脂,对铝为21.36mg Al/g干树脂;动态条件下树脂对镍的吸附容量为6.78mg Ni/g干树脂,对铝为31.8mgAl/g干树脂,吸附液流速为1m/h~3m/h.吸附后的柠檬酸溶液可循环使用.当用1mol/L硫酸解吸时,树脂对镍铝的解吸率可达90%以上.当硫酸中Ni2 为1.70mmol/L,Al3 为7.40mmol/L时,树脂的解吸率仍可达80%以上.  相似文献   

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通过原子吸收光谱法研究了在不同pH、吸附剂量、Pb2+浓度和吸附时间条件下磷酸酯化改性梨渣吸附Pb2+的行为。结果表明:溶液初始pH 4.2时,Pb2+的吸附达到最大值;酯化梨渣≥10 g/L能除去Pb2+为30 mg/L溶液中的91%的Pb2+。酯化梨渣对Pb2+的吸附符合Langmuir等温模型,其最大吸附能力为43.99 mg/g。Pb2+达到吸附平衡的时间为40 min,准一级反应动力学方程可描述酯化梨渣对Pb2+的吸附过程。  相似文献   

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研究了D406螯合树脂对硫酸锌溶液中氟的吸附和解吸性能,考察了影响氟吸附和解吸的因素以及该树脂吸附和解吸氟的动力学参数。结果表明,在25℃、pH=2、硫酸锌浓度为1.50mol/L、氟离子浓度为200mg/L条件下,D406螯合树脂对氟的吸附量为5.55mg/g。D406螯合树脂对氟的吸附符合Freundlich吸附模型。吸附和解吸的动力学符合Boyd液膜扩散方程,吸附反应活化能Ea=12.14kJ/mol,解吸反应活化能Ea=19.54kJ/mol。  相似文献   

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郑易安  王爱勤 《应用化学》2009,26(10):1154-1158
用制备的聚(丙烯酸-co-丙烯酰胺)/蒙脱土/腐殖酸钠复合吸附剂,研究了溶液pH值、吸附时间和Pb2+溶液初始浓度等因素对重金属Pb2+的吸附性能,探讨了复合吸附剂对Pb2+的吸附机理。结果表明,在pH值为6.0、吸附时间2 h、Pb2+溶液初始浓度0.01 mol/L和吸附剂用量0.10 g的条件下,复合吸附剂对Pb2+的吸附量达到364.05 mg/g,平衡所需的时间为15 min。与蒙脱土相比,复合吸附剂具有更高的吸附容量和更快的吸附速率。  相似文献   

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以乙酸木质素为原料,通过曼尼希胺化反应和希夫碱反应制备希夫碱型木质素基离子吸附材料(SLA),利用红外光谱、核磁共振氢谱和元素分析等手段对SLA的结构进行表征。考察了溶液pH值、吸附剂用量和离子溶液初始浓度等因素对SLA吸附性能的影响。结果表明,在pH=5.0、吸附剂用量2.0g/L、Pb~(2+)溶液浓度200mg/L条件下,SLA对Pb~(2+)具有较高的吸附量(65.45mg/g)和良好的吸附选择性。研究结果表明,SLA对Pb~(2+)的等温吸附过程符合Freundlich等温吸附模型,存在非均匀多层吸附现象;SLA对Pb~(2+)的吸附动力学过程符合准二级吸附动力学模型,表明SLA对Pb~(2+)的吸附作用主要为化学吸附。  相似文献   

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以二乙烯三胺(DETA)为改性剂, 对多壁碳纳米管(MWCNTs) 进行共价键修饰,合成了一种对Au(Ⅲ)和Pd(Ⅱ)有选择性的吸附剂MWCNTs-DETA, 并对Au(Ⅲ)和Pd(Ⅱ)的吸附参数进行了研究和优化. 结果表明, 最佳洗脱剂浓度为1.0 mol/L 硫脲-1.0 mol/L 盐酸, Au(Ⅲ)和Pd(Ⅱ)的洗脱率分别为94.48%和89.06%, 最佳条件下Au(Ⅲ)和Pd(Ⅱ)的饱和吸附容量分别为50.45和25.68 mg/g. 在对吸附等温线的考察中, Au(Ⅲ)拟合Langmuir等温线较好, 而Pd(Ⅱ)则拟合Freundlich等温线较好. 吸附动力学均拟合二级模型较好.  相似文献   

9.
以二乙烯三胺( DETA)为改性剂,对多壁碳纳米管(MWCNTs)进行共价键修饰,合成了一种对Au(Ⅲ)和pd(Ⅱ)有选择性的吸附剂MWCNTs-DETA,并对Au(Ⅲ)和Pd(Ⅱ)的吸附参数进行了研究和优化.结果表明,最佳洗脱剂浓度为1.0 mol/L硫脲-1.0 mol/L盐酸,Au(Ⅲ)和Pd(Ⅱ)的洗脱率分别为94.48%和89.06%,最佳条件下Au(Ⅲ)和Pd(Ⅱ)的饱和吸附容量分别为50.45和25.68 mg/g.在对吸附等温线的考察中,Au(Ⅲ)拟合Langmuir等温线较好,而Pd(Ⅱ)则拟合Freundlich等温线较好.吸附动力学均拟合二级模型较好.  相似文献   

10.
D301R树脂吸附-解吸钼的行为研究   总被引:3,自引:0,他引:3  
对D301R型阴离子交换树脂吸附-解吸钼的条件进行了研究,采用静态法试验了pH值、钼的浓度等因素对该树脂吸附钼的影响;采用动态法讨论了该树脂对钼的饱和吸附量、解吸剂及其浓度对解吸钼的影响。结果表明在pH2.5,钼的浓度为20g/L时吸附效果最好,树脂对钼的饱和吸附量为1020mg/g,而采用150g/L NaOH溶液解吸钼效果最佳。  相似文献   

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A low barrier in the reaction pathway between the double Rydberg isomer of OH(3) (-) and a hydride-water complex indicates that the former species is more difficult to isolate and characterize through anion photoelectron spectroscopy than the well known double Rydberg anion (DRA), tetrahedral NH(4) (-). Electron propagator calculations of vertical electron detachment energies (VEDEs) and isosurface plots of the electron localization function disclose that the transition state's electronic structure more closely resembles that of the DRA than that of the hydride-water complex. Possible stabilization of the OH(3) (-) DRA through hydrogen bonding or ion-dipole interactions is examined through calculations on O(2)H(5) (-) species. Three O(2)H(5) (-) minima with H(-)(H(2)O)(2), hydrogen-bridged, and DRA-molecule structures resemble previously discovered N(2)H(7) (-) species and have well separated VEDEs that may be observable in anion photoelectron spectra.  相似文献   

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Summary Dichlorobis(methylsalicylato)titanium(IV) reacts with potassium or amine salts of dialkyl or diaryl dithiocarbamates in 11 and 12 molar ratios in anhydrous benzene (room temperature) or in boiling CH2Cl2 to yield mixed ligand complexes: (AcOC6H4O)2 Ti(S2CNR2)Cl (1) and (AcOC6H4O)2 Ti(S2CNR2)2 (2), R=Et, n-Pr, n-Bu, cyclo-C4H8 and cyclo-C5H10. These compounds are moisture sensitive and highly soluble in polar solvents. Molecular weight measurement in conjunction with i.r.,1H and13C n.m.r. spectral studies suggest coordination number 7 and 8 around titanium(IV) in (1) and (2) respectively.  相似文献   

18.
Pure, highly explosive CF(3)C(O)OOC(O)CF(3) is prepared for the first time by low-temperature reaction between CF(3)C(O)Cl and Na(2)O(2). At room temperature CF(3)C(O)OOC(O)CF(3) is stable for days in the liquid or gaseous state. The melting point is -37.5 degrees C, and the boiling point is extrapolated to 44 degrees C from the vapor pressure curve log p = -1875/T + 8.92 (p/mbar, T/K). Above room temperature the first-order unimolecular decay into C(2)F(6) + CO(2) occurs with an activation energy of 129 kJ mol(-1). CF(3)C(O)OOC(O)CF(3) is a clean source for CF(3) radicals as demonstrated by matrix-isolation experiments. The pure compound is characterized by NMR, vibrational, and UV spectroscopy. The geometric structure is determined by gas electron diffraction and quantum chemical calculations (HF, B3PW91, B3LYP, and MP2 with 6-31G basis sets). The molecule possesses syn-syn conformation (both C=O bonds synperiplanar to the O-O bond) with O-O = 1.426(10) A and dihedral angle phi(C-O-O-C) = 86.5(32) degrees. The density functional calculations reproduce the experimental structure very well.  相似文献   

19.
Huang FQ  Ibers JA 《Inorganic chemistry》2001,40(10):2346-2351
The alkali metal/group 4 metal/polychalcogenides Cs(4)Ti(3)Se(13), Rb(4)Ti(3)S(14), Cs(4)Ti(3)S(14), Rb(4)Hf(3)S(14), Rb(4)Zr(3)Se(14), Cs(4)Zr(3)Se(14), and Cs(4)Hf(3)Se(14) have been synthesized by means of the reactive flux method at 823 or 873 K. Cs(4)Ti(3)Se(13) crystallizes in a new structure type in space group C(2)(2)-P2(1) with eight formula units in a monoclinic cell at T = 153 K of dimensions a = 10.2524(6) A, b = 32.468(2) A, c = 14.6747(8) A, beta = 100.008(1) degrees. Cs(4)Ti(3)Se(13) is composed of four independent one-dimensional [Ti(3)Se(13)(4-)] chains separated by Cs(+) cations. These chains adopt hexagonal closest packing along the [100] direction. The [Ti(3)Se(13)(4-)] chains are built from the face- and edge-sharing of pentagonal pyramids and pentagonal bipyramids. Formal oxidation states cannot be assigned in Cs(4)Ti(3)Se(13). The compounds Rb(4)Ti(3)S(14), Cs(4)Ti(3)S(14), Rb(4)Hf(3)S(14), Rb(4)Zr(3)Se(14), Cs(4)Zr(3)Se(14), and Cs(4)Hf(3)Se(14) crystallize in the K(4)Ti(3)S(14) structure type with four formula units in space group C(2)(h)()(6)-C2/c of the monoclinic system at T = 153 K in cells of dimensions a = 21.085(1) A, b = 8.1169(5) A, c = 13.1992(8) A, beta = 112.835(1) degrees for Rb(4)Ti(3)S(14);a = 21.329(3) A, b = 8.415(1) A, c = 13.678(2) A, beta = 113.801(2) degrees for Cs(4)Ti(3)S(14); a = 21.643(2) A, b = 8.1848(8) A, c = 13.331(1) A, beta = 111.762(2) degrees for Rb(4)Hf(3)S(14); a = 22.605(7) A, b = 8.552(3) A, c = 13.880(4) A, beta = 110.919(9) degrees for Rb(4)Zr(3)Se(14); a = 22.826(5) A, b = 8.841(2) A, c = 14.278(3) A, beta = 111.456(4) degrees for Cs(4)Zr(3)Se(14); and a = 22.758(5) A, b = 8.844(2) A, c = 14.276(3) A, beta = 111.88(3) degrees for Cs(4)Hf(3)Se(14). These A(4)M(3)Q(14) compounds (A = alkali metal; M = group 4 metal; Q = chalcogen) contain hexagonally closest-packed [M(3)Q(14)(4-)] chains that run in the [101] direction and are separated by A(+) cations. Each [M(3)Q(14)(4-)] chain is built from a [M(3)Q(14)] unit that consists of two MQ(7) pentagonal bipyramids or one distorted MQ(8) bicapped octahedron bonded together by edge- or face-sharing. Each [M(3)Q(14)] unit contains six Q(2)(2-) dimers, with Q-Q distances in the normal single-bond range 2.0616(9)-2.095(2) A for S-S and 2.367(1)-2.391(2) A for Se-Se. The A(4)M(3)Q(14) compounds can be formulated as (A(+))(4)(M(4+))(3)(Q(2)(2-))(6)(Q(2-))(2).  相似文献   

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