Division of Physics and Applied Physics, School of Physical and Mathematical Sciences, Nanyang Technological University, Singapore, Singapore.
Centre for Disruptive Photonic Technologies, The Photonics Institute, Nanyang Technological University, Singapore, Singapore.
Nature. 2024 Aug;632(8025):522-527. doi: 10.1038/s41586-024-07759-5. Epub 2024 Aug 14.
Terahertz (THz) wireless communication holds immense potential to revolutionize future 6G to XG networks with high capacity, low latency and extensive connectivity. Efficient THz beamformers are essential for energy-efficient connections, compensating path loss, optimizing resource usage and enhancing spectral efficiency. However, current beamformers face several challenges, including notable loss, limited bandwidth, constrained spatial coverage and poor integration with on-chip THz circuits. Here we present an on-chip broadband THz topological beamformer using valley vortices for waveguiding, splitting and perfect isolation in waveguide phased arrays, featuring 184 densely packed valley-locked waveguides, 54 power splitters and 136 sharp bends. Leveraging neural-network-assisted inverse design, the beamformer achieves complete 360° azimuthal beamforming with gains of up to 20 dBi, radiating THz signals into free space with customizable user-defined beams. Photoexciting the all-silicon beamformer enables reconfigurable control of THz beams. The low-loss and broadband beamformer enables a 72-Gbps chip-to-chip wireless link over 300 mm and eight simultaneous 40-Gbps wireless links. Using four of these links, we demonstrate point-to-4-point real-time HD video streaming. Our work provides a complementary metal-oxide-semiconductor-compatible THz topological photonic integrated circuit for efficient large-scale beamforming, enabling massive single-input multiple-output and multiple-input and multiple-output systems for terabit-per-second 6G to XG wireless communications.
太赫兹(THz)无线通信具有巨大的潜力,可以通过高容量、低延迟和广泛的连接来彻底改变未来的 6G 到 XG 网络。高效的太赫兹波束赋形器对于节能连接、补偿路径损耗、优化资源利用和提高频谱效率至关重要。然而,目前的波束赋形器面临着几个挑战,包括显著的损耗、有限的带宽、受限的空间覆盖范围以及与片上太赫兹电路的集成性差。在这里,我们提出了一种基于谷点涡旋的片上宽带太赫兹拓扑波束赋形器,用于波导相控阵中的波导、分束和完美隔离,具有 184 个密集排列的谷锁定波导、54 个功率分配器和 136 个锐弯。利用神经网络辅助逆设计,波束赋形器实现了高达 20 dBi 的增益,可实现完整的 360°方位角波束成形,将太赫兹信号辐射到自由空间中,具有可定制的用户定义波束。光激发全硅波束赋形器可实现太赫兹波束的可重构控制。这种低损耗、宽带波束赋形器可实现 72 Gbps 的片上无线链路,距离可达 300mm,以及同时进行的 8 个 40 Gbps 的无线链路。使用其中的四个链路,我们演示了点到 4 点的实时高清视频流。我们的工作提供了一种与互补金属氧化物半导体兼容的太赫兹拓扑光子集成电路,用于高效的大规模波束赋形,可实现大规模的单输入多输出和多输入多输出系统,以实现每秒 terabit 的 6G 到 XG 无线通信。