Flodgren Vidar, Das Abhijit, Sestoft Joachim E, Alcer David, Jensen Thomas K, Jeddi Hossein, Pettersson Håkan, Nygård Jesper, Borgström Magnus T, Linke Heiner, Mikkelsen Anders
NanoLund, Lund University, Box 118, 22100 Lund, Sweden.
Division of Synchrotron Radiation Research, Department of Physics, Lund University, Box 118, 22100 Lund, Sweden.
ACS Photonics. 2025 Jan 21;12(2):655-665. doi: 10.1021/acsphotonics.4c01375. eCollection 2025 Feb 19.
On-chip optical communication between individual nano optoelectronic components is important to reduce the footprint and improve energy efficiency of photonic neuromorphic solutions. Although nanoscale photon emitters and receivers have been reported separately, communication between them remains largely unexplored. We demonstrate direct on-chip directional broadcasting of light between individual InP nanowire photodiodes on silicon. The performance of multiple wire-to-wire communication circuits is mapped, demonstrating robust performance with up to 5 bit resolution as needed in biological networks and a minimum component driving power for continuous operation of 0.5 μW which is below that of conventional hardware. The results agree well with theoretical modeling that allows us to understand network performance limits and identify where significant improvements could be achieved. We estimate that an energy per operation of ∼1 fJ and signal fan-out from one emitter to hundreds of other nodes is possible. We find that the nanowire circuit performance parameters can satisfy the quantitative requirements to run the tasks of neural nodes in a bioderived neural network for autonomous navigation.
单个纳米光电器件之间的片上光通信对于减小光子神经形态解决方案的占地面积并提高其能源效率至关重要。尽管已经分别报道了纳米级光子发射器和接收器,但它们之间的通信在很大程度上仍未得到探索。我们展示了硅基上单个磷化铟纳米线光电二极管之间光的直接片上定向广播。绘制了多个线对线通信电路的性能,证明了其具有强大的性能,具有生物网络所需的高达5位分辨率,以及连续运行所需的最低组件驱动功率0.5微瓦,低于传统硬件。结果与理论模型非常吻合,这使我们能够理解网络性能限制并确定可以实现重大改进的地方。我们估计每次操作的能量约为1飞焦,并且从一个发射器到数百个其他节点的信号扇出是可能的。我们发现纳米线电路性能参数可以满足在生物衍生神经网络中运行自主导航神经节点任务的定量要求。