ACS Appl Mater Interfaces. 2011 Apr;3(4):945-51. doi: 10.1021/am200109r. Epub 2011 Mar 11.
We demonstrate large and reversible tuning of plasmonic properties of gold nanoparticles mediated by the reversible breaking and making of linear and branched chains of gold nanoparticles adsorbed on an ultrathin (1 nm) responsive polymer film. Atomic force microscopy revealed that at pH below the isoelectric point of the polybase (extended state of the polymer chains), gold nanoparticles adsorbed on the polymer layer existed primarily as individual nanoparticles. On the other hand, at higher pH, the polymer chains transition from coil to globule (collapsed) state, resulting in the formation of linear and branched chains with strong interparticle plasmon coupling. Reversible aggregation of the nanoparticles resulted in large and reversible change in the optical properties of the metal nanostructure assemblies. In particular, we observed a large redistribution of the intensity between the individual and coupled plasmon bands and a large shift (nearly 95 nm) in the coupled plasmon band with change in pH. Large tunability of plasmonic properties of the metal nanostructure chains reported here is believed to be caused by the chain aggregates of nanoparticles and un-cross-linked state of the adsorbed polymer enabling large changes in polymer chain conformation.
我们通过可逆地打破和形成吸附在超薄膜(1nm)响应聚合物上的金纳米粒子的线性和支链,证明了金纳米粒子的等离子体性质具有较大的和可反转的调谐性。原子力显微镜显示,在低于聚碱等电点的 pH 值下(聚合物链的扩展状态),吸附在聚合物层上的金纳米粒子主要以单个纳米粒子的形式存在。另一方面,在较高的 pH 值下,聚合物链从线圈到球(塌陷)状态转变,导致形成具有强粒子间等离子体耦合的线性和支链。纳米粒子的可逆聚集导致金属纳米结构组装体的光学性质发生大的和可逆的变化。特别是,我们观察到在单个和耦合等离子体带之间的强度的大再分配,并且在耦合等离子体带中存在大的位移(近 95nm),这是随着 pH 值的变化而发生的。这里报道的金属纳米结构链的等离子体性质的大可调性被认为是由纳米粒子的链聚集和吸附聚合物的未交联状态引起的,这使得聚合物链构象发生大的变化。