用微透镜元件实现自由空间光链路

E. Strzelecka, D.A. Louderback, K. Bertilsson, B. Thibeault, M. Mondry, L. Coldren
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引用次数: 6

摘要

更高的计算机时钟速度将需要替代技术来克服背板电气互连的性能限制。其中一种方法是使用平行自由空间梁进行板对板互连。我们演示了使用980 nm垂直腔激光器(vcl)作为发射器和背面照明双通肖特基二极管作为接收器的自由空间光链路。这些器件与折射微透镜集成在芯片上,从而产生可直接用于系统的组件,而不需要外部光学器件。直径3.1 /spl μ m的单模介电孔径VCL与微透镜集成,远场发散半角为/spl μ m/1度,允许互连长度为/spl μ m/ 5mm。这种尺寸的vcl在功率/spl sim/1 mW时带宽/spl sim/15 GHz,适用于高速光互连。我们通过评估位于250 /spl mu/m间距上的相邻通道的功率吞吐量和串扰,研究了自由空间链路对机械失调和制造变化的容错性。对误差公差进行了实验评价。我们通过带有微透镜组件的自由空间系统,实现了误码率<10/sup -12/的400 Mbit/s的数据传输。数据速率目前受到封装的限制,而不是VCL的固有带宽。我们还演示了通过将信号从微透镜VCL直接发射到光纤耦合高速接收器,在BER<10/sup -12/的情况下以3gbit /s的速度传输数据。
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Free-space optical link realized with microlensed components
Higher computer clock speeds will require alternate technologies to overcome the performance limitations of backplane electrical interconnections. One such method is to use parallel free-space beams for board-to-board interconnects. We demonstrate a free-space optical link using 980 nm vertical-cavity lasers (VCLs) as transmitters and back-side illuminated double-pass Schottky diodes as receivers. These devices are integrated on-chip with refractive microlenses, resulting in components that can be used directly in systems, without the need for external optics. A single-mode dielectrically-apertured VCL of diameter 3.1 /spl mu/m integrated with a microlens, has a far-field divergence half-angle of /spl sim/1 degree, allowing for an interconnect length of /spl sim/5 mm. VCLs of this size have bandwidths /spl sim/15 GHz at powers /spl sim/1 mW, suitable for high-speed optical interconnects. We have studied the tolerance of the free-space link to mechanical misalignments and to fabrication variations by evaluating the power throughput and crosstalk from adjacent channels positioned on a 250 /spl mu/m pitch. The misalignment tolerances were also evaluated experimentally. We achieved data transmission at 400 Mbit/s with bit error rate (BER) <10/sup -12/ through the free-space system with microlensed components. The data rate is presently limited by the packaging, not the inherent bandwidth of the VCL. We have also demonstrated data transmission at 3 Gbit/s with BER<10/sup -12/ by launching signal from the microlensed VCL directly to a fiber-coupled high-speed receiver.
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