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Development of a Multi-technology FPGA: a Reconfigurable Architecture for Photonic Information Processing

机译:一种多技术FPGA的开发:用于光子信息处理的可重构架构

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Over the years, Field Programmable Gate Arrays (FPGAs) have made a profound impact on the electronics industry with rapidly improving semiconductor-manufacturing technology ranging from sub-micron to deep sub-micron processes and equally innovative CAD tools. Though FPGA has revolutionized programmable/ reconfigurable digital logic technology, one limitation of current FPGA's is that the user is limited to strictly electronic designs. Thus, they are not suitable for applications that are not purely electronic, such as optical communications, photonic information processing systems and other multi-technology applications (ex. analog devices, MEMS devices and microwave components). Over recent years, the growing trend has been towards the incorporation of non-traditional device technologies into traditional CMOS VLSI systems. The integration of these technologies requires a new kind of FPGA that can merge conventional FPGA technology with photonic and other multi-technology devices. The proposed new class of field programmable device will extend the flexibility, rapid prototyping and reusability benefits associated with conventional electronic into photonic and multi-technology domain and give rise to the development of a wider class of programmable and embedded integrated systems. This new technology will create a tremendous opportunity for applying the conventional programmable/reconfigurable hardware concepts in other disciplines like photonic information processing. To substantiate this novel architectural concept, we have fabricated proof-of-the-concept CMOS VLSI Multi-technology FPGA (MT-FPGA) chips that include both digital field programmable logic blocks and threshold programmable photoreceivers which are suitable for sensing optical signals. Results from these chips strongly support the feasibility of this new optoelectronic device concept.
机译:多年来,现场可编程门阵列(FPGA)对电子行业进行了深远的影响,通过快速改善从子微米到深层亚微米工艺和同样创新的CAD工具的半导体制造技术。虽然FPGA已彻底改变可编程/可重新配置的数字逻辑技术,但目前FPGA的一个限制是用户仅限于严格的电子设计。因此,它们不适用于不纯电子的应用,例如光通信,光子信息处理系统和其他多技术应用(例如ADIM设备,MEMS设备和微波组件)。近年来,日益增长的趋势一直朝着传统的CMOS VLSI系统纳入非传统设备技术。这些技术的整合需要一种新型的FPGA,可以利用具有光子和其他多技术设备的传统FPGA技术。建议的新类别可编程设备将扩展与传统电子进入光子和多技术领域相关的灵活性,快速的原型和可重用效益,并产生更广泛的可编程和嵌入式集成系统的开发。这项新技术将为应用光子信息处理等其他学科应用于应用传统的可编程/可重构硬件概念的巨大机会。为了证实这一新颖的架构概念,我们已经制造了概念证据CMOS VLSI多技术FPGA(MT-FPGA)芯片,其包括数字现场可编程逻辑块和阈值可编程光剖式,它们适用于感测光信号。这些芯片的结果强烈支持这种新的光电器件概念的可行性。

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