作者
Ki Youl Yang, Alexander D White, Farshid Ashtiani, Chinmay Shirpurkar, Srinivas V Pericherla, Lin Chang, Hao Song, Kaiheng Zou, Huibin Zhou, Kai Pang, Joshua Yang, Melissa A Guidry, Daniil M Lukin, Han Hao, Lawrence Trask, Geun Ho Ahn, Andy Netherton, Travis C Briles, Jordan R Stone, Lior Rechtman, Jeffery S Stone, Kasper Van Gasse, Jinhie L Skarda, Logan Su, Dries Vercruysse, Jean-Philippe W Maclean, Shahriar Aghaeimeibodi, Ming-Jun Li, David AB Miller, Dan Marom, Scott B Papp, Alan E Willner, John E Bowers, Peter J Delfyett, Firooz Aflatouni, Jelena Vučković
发表日期
2021/3/25
期刊
arXiv preprint arXiv:2103.14139
简介
Modern microelectronic processors have migrated towards parallel computing architectures with many-core processors. However, such expansion comes with diminishing returns exacted by the high cost of data movement between individual processors. The use of optical interconnects has burgeoned as a promising technology that can address the limits of this data transfer. While recent pushes to enhance optical communication have focused on developing wavelength-division multiplexing technology, this approach will eventually saturate the usable bandwidth, and new dimensions of data transfer will be paramount to fulfill the ever-growing need for speed. Here we demonstrate an integrated intra- and inter-chip multi-dimensional communication scheme enabled by photonic inverse design. Using inverse-designed mode-division multiplexers, we combine wavelength- and mode- multiplexing and send massively parallel data through nano-photonic waveguides and optical fibres. Crucially, as we take advantage of an orthogonal optical basis, our approach is inherently scalable to a multiplicative enhancement over the current state of the art.
引用总数
学术搜索中的文章
KY Yang, AD White, F Ashtiani, C Shirpurkar… - arXiv preprint arXiv:2103.14139, 2021