Volume-consumption comparisons of free-space and guided-wave optical interconnections

被引:5
|
作者
Li, Y [1 ]
Popelek, J [1 ]
机构
[1] NEC Res Inst, Princeton, NJ 08540 USA
关键词
D O I
10.1364/AO.39.001815
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
We compare volume-consumption characteristics of free-space and guided-wave optical interconnections. System volume consumption is used as a fundamental measure of various point-to-point space-invariant and space-variant interconnections of two-dimensional arrays of N-1/2 x N-1/2 points. We show that, in free-Space and space-invariant situations, although volume consumption for macroaperture optics is O-1(N-3/2), where O denotes the order, it is only O-2(N) for microaperture optics. For free-space and space-variant operations only microaperture optics is possible without fundamental power losses. The corresponding minimum volume consumption is O-3(N-3). We show that single microaperture-per-channel implementations of either space-invariant or space-variant operations are, in general, more volume efficient than are their two-cascade microaperture-per-channel counterparts. We also show that, for minimizing volume consumption, the optimum relative apertures F#(opt) for space-variant optical elements are, respectively, (5N)(1/2)/4 for a Single microaperture-per-channel geometry and (5N)(1/2)/2 for a two-cascade microaperture-per-channel geometry. In guided-wave or fiber interconnect cases our study shows that the volume consumption for space-invariant and space-variant operations is O-4(N), with O-4 < O-2, and O-5(N-3/2), respectively. Thus an important conclusion of the study is that free-space optics is less volume efficient than is guided-wave optics in both space-invariant and space-variant interconnect applications. (C) 2000 Optical Society of America OCIS codes: 200.4650, 200.4960, 050.1960, 130.3120, 200.2610.
引用
收藏
页码:1815 / 1825
页数:11
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