2016/09/30 by David A. B. Miller · 3 citations
Engineering · Physics and Astronomy · #Bandwidth (computing) #Dissipation #Electronic circuit #Electronics #Interconnection #Multiplexing #Optical Network Technologies #Optical computing #Optical interconnect #Photodetector #Scalability #Semiconductor Lasers and Optical Devices #Semiconductor Quantum Structures and Devices #physics.optics
paper · pdf · doi:10.1109/jlt.2017.2647779
published as IEEE/OSA J. Lightwave Technology 35 (3), 343-393 (2017)
openalex created_date 2016/09/30 · arxiv created 2017/01/01 · openalex publication_date 2017/01/04 · arxiv updated 2017/01/30 · openalex updated_date 2026/08/05
Optics offers unique opportunities for reducing energy in information processing and communications while simultaneously resolving the problem of interconnect bandwidth density inside machines. Such energy dissipation overall is now at environmentally significant levels; the source of that dissipation is progressively shifting from logic operations to interconnect energies. Without the prospect of substantial reduction in energy per bit communicated, we cannot continue the exponential growth of our use of information. The physics of optics and optoelectronics fundamentally addresses both interconnect energy and bandwidth density, and optics may be the only scalable solution to such problems. Here we summarize the corresponding background, status, opportunities, and research directions for optoelectronic technology and novel optics, including subfemtojoule devices in waveguide and novel two-dimensional (2-D) array optical systems. We compare different approaches to low-energy optoelectronic output devices and their scaling, including lasers, modulators and LEDs, optical confinement approaches (such as resonators) to enhance effects, and the benefits of different material choices, including 2-D materials and other quantum-confined structures. With such optoelectronic energy reductions, and the elimination of line charging dissipation by the use optical connections, the next major interconnect dissipations are in the electronic circuits for receiver amplifiers, timing recovery, and multiplexing. We show we can address these through the integration of photodetectors to reduce or eliminate receiver circuit energies, free-space optics to eliminate the need for timing and multiplexing circuits (while also solving bandwidth density problems), and using optics generally to save power by running large synchronous systems. One target concept is interconnects from ~1 cm to ~10 m that have the same energy (~10 fJ/bit) and simplicity as local electrical wires on chip.