Sorianello Vito, Montanaro Alberto, Giambra Marco Angelo, Ligato Nadia, Templ Wolfgang, Galli Paola, Romagnoli Marco
Photonic Networks and Technologies Lab - CNIT, Via G. Moruzzi 1, 56124 Pisa, Italy.
Tecip Institute - Scuola Superiore Sant'Anna, Via G. Moruzzi 1, 56124 Pisa, Italy.
ACS Photonics. 2023 May 4;10(5):1446-1453. doi: 10.1021/acsphotonics.3c00015. eCollection 2023 May 17.
Starting from its classical domain of long distance links, optical communication is conquering new application areas down to chip-to-chip interconnections in response to the ever-increasing demand for higher bandwidth. The use of coherent modulation formats, typically employed in long-haul systems, is now debated to be extended to short links to increase the bandwidth density. Next-generation transceivers are targeting high bandwidth, high energy efficiency, compact footprint, and low cost. Integrated photonics is the only technology to reach this goal, and silicon photonics is expected to play the leading actor. However, silicon modulators have some limits, in terms of bandwidth and footprint. Graphene is an ideal material to be integrated with silicon photonics to meet the requirements of next generation transceivers. This material provides optimal properties: high mobility, fast carrier dynamics and ultrabroadband optical properties. Graphene photonics for direct detection systems based on binary modulation formats have been demonstrated so far, including electro-absorption modulators, phase modulators, and photodetectors. However, coherent modulation for increased data-rates has not yet been reported for graphene photonics yet. In this work, we present the first graphene photonics I/Q modulator based on four graphene on silicon electro-absorption modulators for advanced modulation formats and demonstrate quadrature phase shift keying (QPSK) modulation up to 40 Gb/s.
从其长距离链路的经典领域出发,光通信正在攻克新的应用领域,直至芯片到芯片的互连,以响应日益增长的对更高带宽的需求。通常用于长途系统的相干调制格式,现在被讨论是否可扩展到短链路以提高带宽密度。下一代收发器的目标是高带宽、高能效、小尺寸和低成本。集成光子学是实现这一目标的唯一技术,而硅光子学有望扮演主要角色。然而,硅调制器在带宽和尺寸方面存在一些限制。石墨烯是一种与硅光子学集成以满足下一代收发器要求的理想材料。这种材料具有最佳特性:高迁移率、快速载流子动力学和超宽带光学特性。到目前为止,已经展示了基于二进制调制格式的用于直接检测系统的石墨烯光子学,包括电吸收调制器、相位调制器和光电探测器。然而,石墨烯光子学用于提高数据速率的相干调制尚未见报道。在这项工作中,我们展示了首个基于四个硅基石墨烯电吸收调制器的用于高级调制格式的石墨烯光子学I/Q调制器,并演示了高达40 Gb/s的正交相移键控(QPSK)调制。