Consiglio Nazionale delle Ricerche Istituto Nazionale di Ottica-Sezione di Napoli, Via Campi Flegrei, 34-80078 Pozzuoli, Naples, Italy.
Proc Natl Acad Sci U S A. 2011 Sep 13;108(37):15106-11. doi: 10.1073/pnas.1110676108. Epub 2011 Sep 6.
In liquids realm, surface tension and capillarity are the key forces driving the formation of the shapes pervading the nature. The steady dew drops appearing on plant leaves and spider webs result from the minimization of the overall surface energy [Zheng Y, et al. (2010) Nature 463:640-643]. Thanks to the surface tension, the interfaces of such spontaneous structures exhibit extremely good spherical shape and consequently worthy optical quality. Also nanofluidic instabilities generate a variety of fascinating liquid silhouettes, but they are however intrinsically short-lived. Here we show that such unsteady liquid structures, shaped in polymeric liquids by an electrohydrodynamic pressure, can be rapidly cured by appropriate thermal treatments. The fabrication of many solid microstructures exploitable in photonics is demonstrated, thus leading to a new concept in 3D lithography. The applicability of specific structures as optical tweezers and as novel remotely excitable quantum dots-embedded microresonators is presented.
在液体领域,表面张力和毛细现象是驱动自然界中各种形状形成的关键力量。植物叶片和蜘蛛网出现的稳定露珠是由于整体表面能最小化的结果[Zheng Y, 等人。(2010)《自然》463:640-643]。由于表面张力,这些自发结构的界面呈现出极好的球形,因此具有出色的光学质量。此外,纳米流体不稳定性会产生各种迷人的液体轮廓,但它们本质上是短暂的。在这里,我们展示了通过电动力学压力在聚合物液体中形成的这种不稳定的液体结构可以通过适当的热处理迅速固化。演示了许多可用于光子学的固态微结构的制造,从而为 3D 光刻引入了新概念。展示了特定结构作为光镊和新型远程激发量子点嵌入微谐振器的适用性。