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Synthesis of polymer nanogels by electro-Fenton process: investigation of the effect of main operation parameters

机译:电子芬顿法合成聚合物纳米凝胶:主要操作参数影响的研究

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摘要

Recently, electro-Fenton (EF) process has been shown as a promising, facile, effective, low cost and environmentally-friendly alternative for synthesizing polymer nanogels suitable as biocompatible nanocarriers for emerging biomedical applications. Here, the electrochemically-assisted modification of poly(vinylpyrrolidone) (PVP) by EF process was studied to assess the role of key operation parameters for a precise modulation of polymer crosslinking and its functionalization with [sbnd]COOH and succinimide groups. The dimensions of the nanogels, in terms of hydrodynamic radius (Rh) and weight-average molecular weight (Mw), can be tuned up by controlling the electrolysis time, current density (j) and PVP and Fe2+concentrations, as demonstrated via dynamic and static light scattering and gel permeation chromatography analysis. Using PVP at 0.25 wt.%, Fe2+at 0.5-1.0 mmol dmâ\u88\u923and low j, short treatment times induced intramolecular crosslinking with chain scission, allowing size reduction of PVP particles from 24 to 9â\u80\u9310 nm. Longer reaction times and higher PVP and Fe2+contents favored intermolecular crosslinking ending in Mwvalues higher than the initial 3.95 Ã\u97 105 g molâ\u88\u921. An excessive [rad]OH dose from a too high circulated charge (Q), i.e., too prolonged electrolysis time even at low j or too high j even for short time, promoted intramolecular crosslinking (Rh â\u88¼Â 10â\u80\u9312 nm) along with a very significant chain scission probably owing to the loss of mobility of the three-dimensional nanogel network. In conclusion, EF allowed transforming the architecture of linear, inert PVP chains into a functionalized nanogel with [sbnd]COOH and succinimide groups that have great potential for further conjugation.
机译:最近,电子芬顿(EF)工艺已被证明是一种有前途的,简便,有效,低成本和环保的替代品,可用于合成适合作为新兴生物医学应用的生物相容性纳米载体的聚合物纳米凝胶。在此,研究了通过EF工艺对聚(乙烯基吡咯烷酮)(PVP)进行电化学辅助改性,以评估关键操作参数对聚合物交联的精确调节及其由[COOH]和琥珀酰亚胺基团官能化的作用。可以通过控制电解时间,电流密度(j)以及PVP和Fe2 +的浓度来调节纳米凝胶的尺寸,以流体力学半径(Rh)和重均分子量(Mw)表示,以及静态光散射和凝胶渗透色谱分析。使用0.25 wt。%的PVP,0.5-1.0 mmoldmâu88\ u923的Fe2 +和低j,短的治疗时间诱导了分子内交联并产生断链,使PVP颗粒的尺寸从24减少到9âu80u9310nm 。更长的反应时间和更高的PVP和Fe2 +含量更有利于分子间的交联,其Mw值高于初始的3.95×105 g g mol×u88 \ u921。来自太高的循环电荷(Q)的过量[rad] OH剂量,即,即使在低j时电解时间也延长或即使在短时间内也过高j离子,都促进了分子内交联(RhÂu88¼10uu80u9312nm )以及非常重要的断链,这可能是由于三维纳米凝胶网络失去了活动性所致。总之,EF允许将线性,惰性PVP链的结构转变为具有[sbnd] COOH和琥珀酰亚胺基团的功能化纳米凝胶,这些纳米凝胶具有更大的共轭潜力。

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