Zhang Chuang, Zou Chang-Ling, Zhao Yan, Dong Chun-Hua, Wei Cong, Wang Hanlin, Liu Yunqi, Guo Guang-Can, Yao Jiannian, Zhao Yong Sheng
Beijing National Laboratory for Molecular Sciences, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, China.
Key Laboratory of Quantum Information, University of Science and Technology of China, Hefei 230026, Anhui, China.
Sci Adv. 2015 Sep 18;1(8):e1500257. doi: 10.1126/sciadv.1500257. eCollection 2015 Sep.
A photonic integrated circuit (PIC) is the optical analogy of an electronic loop in which photons are signal carriers with high transport speed and parallel processing capability. Besides the most frequently demonstrated silicon-based circuits, PICs require a variety of materials for light generation, processing, modulation, and detection. With their diversity and flexibility, organic molecular materials provide an alternative platform for photonics; however, the versatile fabrication of organic integrated circuits with the desired photonic performance remains a big challenge. The rapid development of flexible electronics has shown that a solution printing technique has considerable potential for the large-scale fabrication and integration of microsized/nanosized devices. We propose the idea of soft photonics and demonstrate the function-directed fabrication of high-quality organic photonic devices and circuits. We prepared size-tunable and reproducible polymer microring resonators on a wafer-scale transparent and flexible chip using a solution printing technique. The printed optical resonator showed a quality (Q) factor higher than 4 × 10(5), which is comparable to that of silicon-based resonators. The high material compatibility of this printed photonic chip enabled us to realize low-threshold microlasers by doping organic functional molecules into a typical photonic device. On an identical chip, this construction strategy allowed us to design a complex assembly of one-dimensional waveguide and resonator components for light signal filtering and optical storage toward the large-scale on-chip integration of microscopic photonic units. Thus, we have developed a scheme for soft photonic integration that may motivate further studies on organic photonic materials and devices.
光子集成电路(PIC)是电子回路的光学类比,其中光子是具有高传输速度和并行处理能力的信号载体。除了最常展示的基于硅的电路外,PIC还需要多种材料用于光的产生、处理、调制和检测。有机分子材料凭借其多样性和灵活性,为光子学提供了一个替代平台;然而,制造具有所需光子性能的有机集成电路仍然是一个巨大的挑战。柔性电子学的快速发展表明,溶液印刷技术在大规模制造和集成微尺寸/纳米尺寸器件方面具有相当大的潜力。我们提出了软光子学的概念,并展示了高质量有机光子器件和电路的功能导向制造。我们使用溶液印刷技术在晶圆级透明柔性芯片上制备了尺寸可调且可重复的聚合物微环谐振器。印刷的光学谐振器显示出高于4×10⁵的品质(Q)因子,这与基于硅的谐振器相当。这种印刷光子芯片的高材料兼容性使我们能够通过将有机功能分子掺杂到典型的光子器件中来实现低阈值微激光器。在同一芯片上,这种构建策略使我们能够设计一维波导和谐振器组件的复杂组合,用于光信号滤波和光存储,以实现微观光子单元的大规模片上集成。因此,我们开发了一种软光子集成方案,这可能会推动对有机光子材料和器件的进一步研究。