1.3光子学与电子学的融合

M. Smit, K. Williams, J. Tol
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引用次数: 2

摘要

光子集成电路(PICs)的市场正在迅速增长。光子集成是目前高带宽和远距离通信的主导技术,越来越多地应用于数据中心内的短距离通信。现在,它也将在许多其他领域占据主导地位:pic在精度、带宽和能源效率方面提供了令人信服的性能进步。为了使新领域能够吸收,高度标准化(通用)光子集成平台技术的可用性至关重要,因为这将设计与技术分离开来,减少了新进入者的障碍。另一个主要的挑战是将光子与用于驱动和控制光子集成电路及其信息处理的电子电路进行低成本、高能效的集成。今天,主要的平台技术是基于磷化铟(InP)的单片集成和基于硅(Si)的光子学。InP技术提供全套光子元件的集成,包括激光器、光放大器和高性能调制器。虽然硅光子学与CMOS工艺设施具有更好的兼容性,但它缺乏最重要的光子构建块:激光器和光放大器。在本文中,我们描述了基于InP的通用集成的现状和未来的发展方向,并比较了InP光子学和Si光子学与控制电子集成的潜力。在接下来的内容中,我们将在第1节集中讨论InP和Si光子学之间的异同。在第2节中,我们将简要概述该技术的现状以及它与硅光子学的比较。在第3节和第4节中,我们将讨论支持与电子器件有效集成的膜基技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
1.3 Integration of Photonics and Electronics
The market for photonic integrated circuits (PICs) is rapidly growing. Photonic integration which is now the dominant technology in high-bandwidth and long-distance telecommunications is increasingly applied to shorter distances within data centers. Now, it is set to become also dominant in many other fields: PICs offer compelling performance advances in terms of precision, bandwidth, and energy efficiency. To enable uptake in new sectors, the availability of highly standardized (generic) photonic-integration-platform technologies is of key importance, as this separates design from technology, reducing barriers for new entrants. Another major challenge is low-cost energy-efficient integration of photonics with the electronic circuitry that is used for driving and controlling the photonic IC and processing its information. Today, the major platform technologies are indium phosphide (InP)-based monolithic integration and silicon (Si)-based photonics. InP technology offers integration of the full suite of photonic components, including lasers, optical amplifiers, and high-performance modulators. While Si photonics offers better compatibility with CMOS process facilities, it lacks the most important photonic building blocks: lasers and optical amplifiers. In this paper, we describe the current status and directions for future developments of InP-based generic integration, and we compare the potential of InP photonics and Si photonics for integration with controlling electronics. In what follows, we will focus in Section 1 on similarities and differences between InP and Si photonics. In Section 2, we will give a concise overview of the present status of this technology and how it compares with Silicon photonics. In sections 3 and 4 we will discuss membrane-based technologies which support efficient integration with electronics.
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