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Load-Induced Transitions in the Lubricity of Adsorbed Poly(L-lysine)-g-dextran as a Function of Polysaccharide Chain Density

机译:负载诱导的聚(L-赖氨酸)-g-葡聚糖的润滑性转变与多糖链密度的关系

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Chain-density gradients of poly(L-lysine)-graft-dextran (PLL-g-dex), a synthetic comblike copolymer with a poly(L-lysine) backbone grafted with dextran side chains, were fabricated on an oxidized silicon substrate. The influence of the changing dextran chain density along the gradient on the local coefficient of friction was investigated via colloidal-probe lateral force microscopy. Both in composition and structure, PLL-g-dex shares many similarities with bottlebrush biomolecules present in natural lubricating systems, while having the advantage of being well-characterized in terms of both architecture and adsorption behavior on negatively charged oxide surfaces. The results indicate that the transition of the dextran chain density from the mushroom into the brush regime coincides with a sharp reduction in friction at low loads. Above a critical load, the friction increases by more than an order of magnitude, likely signaling a pressure-induced change in the brush conformation at the contact area and a corresponding change in the mechanism of sliding. The onset of this higher-friction regime is moved to higher loads as the chain density of the film is increased. While in the low-load (and low-friction) regime, increased chain density leads to lower friction, in the high-load (high-friction) regime, increased chain density was found to lead to higher friction.
机译:在氧化硅基板上制备了聚(L-赖氨酸)-接枝-右旋糖酐(PLL-g-dex)的链密度梯度,该合成的梳状共聚物具有接枝有右旋糖酐侧链的聚(L-赖氨酸)主链。通过胶体探针侧向力显微镜研究了沿梯度变化的右旋糖酐链密度对局部摩擦系数的影响。在成分和结构上,PLL-g-dex与天然润滑系统中存在的洗瓶刷生物分子都有许多相似之处,同时具有在结构和在带负电荷的氧化物表面上的吸附行为方面均具有很好特征的优点。结果表明,葡聚糖链密度从蘑菇到刷状的过渡与低负荷下摩擦的急剧降低相吻合。在临界载荷以上时,摩擦力会增加一个数量级以上,这很可能表明在接触区域中压力引起的刷子构型发生了变化,并且滑动机理也发生了相应的变化。随着薄膜链密度的增加,这种较高摩擦状态的开始会移至较高的载荷。在低负荷(低摩擦)状态下,链密度增加导致摩擦减小,而在高负荷(高摩擦)状态下,链密度增加导致摩擦增大。

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