Kawahigashi Masayuki, Sumida Hiroaki, Yamamoto Kazuhiko
College of Bioresource Science, Nihon University, Fujisawa, Kanagawa 252-8510, Japan.
J Colloid Interface Sci. 2005 Apr 15;284(2):463-9. doi: 10.1016/j.jcis.2004.10.023.
Ultrafiltration fractions of three soil humic acids were characterized by viscometry and high performance size-exclusion chromatography (HPSEC) in order to estimate shapes and hydrodynamic sizes. Intrinsic viscosities under given solute/solvent/temperature conditions were obtained by extrapolating the concentration dependence of reduced viscosities to zero concentration. Molecular mass (weight average molecular weight (M (w)) and number average molecular weight (M (n))) and hydrodynamic radius (R(H)) were determined by HPSEC using pullulan as calibrant. Values of M (w) and M (n) ranged from 15 to 118 x 10(3) and from 9 to 50 x 10(3) (g mol(-1)), respectively. Polydispersity, as indicated by M (w)/M (n), increased with increasing filter size from 1.5 to 2.4. The hydrodynamic radii (R(H)) ranged between 2.2 and 6.4 nm. For each humic acid, M (w) and [eta] were related. Mark-Houwink coefficients calculated on the basis of the M (w)-[eta] relationships suggested restricted flexible chains for two of the humic acids and a branched structure for the third humic acid. Those structures probably behave as hydrated sphere colloids in a good solvent. Hydrodynamic radii of fractions calculated from [eta] using Einstein's equation, which is applicable to hydrated sphere colloids, ranged from 2.2 to 7.1 nm. These dimensions are fit to the size of nanospaces on and between clay minerals and micropores in soil particle aggregates. On the other hand, the good agreement of R(H) values obtained by applying Einstein's equation with those directly determined by HPSEC suggests that pullulan is a suitable calibrant for estimation of molecular mass and size of humic acids by HPSEC.
为了估算三种土壤腐殖酸的形状和流体力学尺寸,采用粘度测定法和高效尺寸排阻色谱法(HPSEC)对其超滤级分进行了表征。在给定的溶质/溶剂/温度条件下,通过将比浓粘度的浓度依赖性外推至零浓度来获得特性粘度。以支链淀粉为校准剂,通过HPSEC测定分子量(重均分子量(M(w))和数均分子量(M(n)))以及流体力学半径(R(H))。M(w)和M(n)的值分别在15至118×10³和9至50×10³(g·mol⁻¹)范围内。由M(w)/M(n)表示的多分散性随着过滤尺寸从1.5增加到2.4而增大。流体力学半径(R(H))在2.2至6.4nm之间。对于每种腐殖酸,M(w)和[η]是相关的。基于M(w)-[η]关系计算的Mark-Houwink系数表明,其中两种腐殖酸具有受限的柔性链,第三种腐殖酸具有支化结构。这些结构在良溶剂中可能表现为水合球体胶体。使用适用于水合球体胶体的爱因斯坦方程根据[η]计算的级分流体力学半径在2.2至7.1nm之间。这些尺寸与粘土矿物上以及土壤颗粒聚集体中微孔之间的纳米空间尺寸相匹配。另一方面,应用爱因斯坦方程获得的R(H)值与通过HPSEC直接测定的值之间的良好一致性表明,支链淀粉是通过HPSEC估算腐殖酸分子量和尺寸的合适校准剂。