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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Metal Speciation Dynamics in Monodisperse Soft Colloidal Ligand Suspensions
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Metal Speciation Dynamics in Monodisperse Soft Colloidal Ligand Suspensions

机译:单分散软胶体悬浮液中金属形态动力学

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A comprehensive theory is presented for the dynamics of metal speciation in monodisperse suspensions of soft spherical particles characterized by a hard core and an ion-permeable shell layer where ligands L are localized.The heterogeneity in the binding site distribution leads to complex formation/dissociation rate constants(denoted as k*_a and k*_d,respectively)that may substantially differ from their homogeneous solution counterparts(k_a and k_d).The peculiarities of metal speciation dynamics in soft colloidal ligand dispersions result from the coupling between diffusive transport of free-metal ions M within and around the soft surface layer and the kinetics of ML complex formation/dissociation within the shell component of the particle.The relationship between k*_(a,d)and k_(a,d)is derived from the numerical evaluation of the spatial,time-dependent distributions of free and bound metal.For that purpose,the corresponding diffusion equations corrected by the appropriate chemical source term are solved in spherical geometry using a Kuwabara-cell-type representation where the intercellular distance is determined by the volume fraction of soft particles.The numerical study is supported by analytical approaches valid in the short time domain.For dilute dispersions of soft ligand particles,it is shown that the balance between free-metal diffusion within and outside of the shell and the kinetic conversion of M into ML within the particular soft surface layer rapidly establishes a quasi-steady-state regime.For sufficiently long time,chemical equilibrium between the free and bound metal is reached within the reactive particle layer,which corresponds to the true steady-state regime for the system investigated.The analysis reported covers the limiting cases of rigid particles where binding sites are located at the very surface of the particle core(e.g.,functionalized latex colloids)and polymeric particles that are devoid of a hard core(e.g.,polysaccharide macromolecules,gel particles).For both the transient and quasi-steady-state regimes,the dependence of k*_(a,d)on the thickness of the soft surface layer,the radius of the hard core of the particle,and the kinetic rate constants k_(a,d)for homogeneous ligand solutions is thoroughly discussed within the context of dynamic features for colloidal complex systems.
机译:提出了一种综合的理论,研究了以球形为特征的软球形球形颗粒的单分散悬浮液中金属形态的动力学,其特征是硬核和离子可渗透的壳层(配体L位于局部),结合位点分布的异质性导致复杂的形成/解离速率常数(分别表示为k * _a和k * _d),可能与均质溶液的对应常数(k_a和k_d)大不相同。软胶体配体分散体中金属形态动力学的独特性是由于自由态扩散扩散之间的耦合引起的。软表面层内和周围的金属离子M以及颗粒壳成分内ML络合物形成/解离的动力学.k * _(a,d)和k_(a,d)之间的关系由数值得出评估自由和结合金属的空间,时间相关分布。为此,相应的扩散方程已通过适当的化学源进行了校正e项用Kuwabara细胞类型表示法求解球形几何形状,其中细胞间距离由软颗粒的体积分数决定。数值研究得到在短时域有效的分析方法的支持。结果表明,在特定的软表面层内,自由金属在壳内外的扩散与M转化为ML的动力学转化之间的平衡迅速建立了准稳态状态。在足够长的时间内,化学平衡游离金属和结合金属之间达到了反应性颗粒层内的量,这对应于所研究系统的真正稳态机制。分析报告涵盖了刚性颗粒的有限情况,其中结合位点位于颗粒的最表面核(例如,功能化的胶乳胶体)和不含硬核的聚合物颗粒(例如,多糖大分子,凝胶对于瞬态和准稳态模式,k * _(a,d)取决于软表面层的厚度,粒子硬核的半径以及动力学速率常数均匀配体溶液的k_(a,d)在胶体复杂系统的动态特征范围内进行了全面讨论。

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