DWI-Leibniz Institute for Interactive Materials, RWTH Aachen University , Forckenbeckstraße 50, 52076 Aachen, Germany.
ACS Nano. 2016 Nov 22;10(11):10195-10201. doi: 10.1021/acsnano.6b05538. Epub 2016 Oct 31.
The potential of colloidal crystals for applications in optics and photonics has been recognized since the description of spontaneous self-assembly of monodisperse colloids into periodic opaline geometries. Provided with a laser gain medium, these direct assemblies generate optical feedback and have prospective use as lasers or frequency converters; however, problems associated with the colloidal crystal integrity and low loading fractions of the gain medium in the self-assembled resonator structure have prevented their realization to date. Here, we circumvent these problems by synthesizing monodisperse conjugated polymer colloids, which consist entirely of gain medium. We coassemble these colloids together with a sol-gel precursor to achieve encapsulated photonic crystals, which can be applied via inkjet printing. These conjugated polymer photonic crystals exhibit single line laser emission upon optical pumping. This technique circumvents time-consuming micro- and nanofabrication steps as well as error-prone backfilling and etching procedures, providing an effortless way to generate laser geometries.
自从描述单分散胶体自组装成周期性蛋白石结构以来,胶体晶体在光学和光子学中的应用潜力就已经得到了认可。在具有激光增益介质的情况下,这些直接组装体产生光学反馈,并有望用作激光器或频率转换器;然而,与胶体晶体完整性相关的问题以及自组装谐振器结构中增益介质的低填充分数,迄今为止阻止了它们的实现。在这里,我们通过合成完全由增益介质组成的单分散共轭聚合物胶体来规避这些问题。我们将这些胶体与溶胶-凝胶前体共组装,以实现可以通过喷墨打印应用的封装光子晶体。这些共轭聚合物光子晶体在光泵浦时表现出单线激光发射。该技术规避了耗时的微纳加工步骤以及易错的回填和蚀刻过程,为生成激光结构提供了一种轻松的方法。