Push-pull Polymer Integrated Mach-Zehnder Modulators

Wenshen Wang, Yongqiang Shi, Weiping Lin, D. Olson, J. Bechtel
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Abstract

Nonlinear optical (NLO) polymers have been used to demonstrate broadband electro-optic (E-O) modulators in laboratories [1-3]. Because of the small and nondispersive dielectric constants of polymer materials, over 100 GHz modulation can be achieved with a simple integrated microstrip line circuit [3]. However, in order for these polymer modulators to be usable in commercial fiber-optic data links, several other device performance figures have to be improved. In addition to the often-discussed thermal stability issue, the halfwave voltage, optical insertion loss, optical power handling capability, and bias control stability are all of vital importance to the commercial application of polymer E-O modulators. Future polymer photonic devices must have a balanced overall performance, with a much lower cost, broader bandwidth, and competitive thermal, photochemical and bias control stability. We have reported our fabrication and testing of integrated Mach-Zehnder modulators using a double-end-crosslinked NLO polymer LD-3 [4-5]. The LD-3 based modulators have exhibited higher thermal stability, photochemical stability and low optical insertion loss compared to the E-O modulators based on the PUR-DR19 polymer [2]. However, because the LD-3 polymer has a lower E-O coefficient r33, and the corona poling schedule was not optimized, our LD-3 modulators exhibited a higher halfwave voltage which is not acceptable in most applications. In this paper, we report our new device fabrication technique that effectively reduced the halfwave voltage by one-half using an optical push-pull structure in M-Z modulators.
推拉式聚合物集成马赫-曾德调制器
非线性光学(NLO)聚合物已在实验室中用于演示宽带电光(E-O)调制器[1-3]。由于聚合物材料的介电常数小且非色散,因此可以用一个简单的集成微带线电路实现100 GHz以上的调制[3]。然而,为了使这些聚合物调制器可用于商业光纤数据链路,必须改进其他几个器件的性能数字。除了经常讨论的热稳定性问题外,半波电压、光插入损耗、光功率处理能力和偏置控制稳定性都对聚合物E-O调制器的商业应用至关重要。未来的聚合物光子器件必须具有平衡的整体性能,具有更低的成本,更宽的带宽,以及具有竞争力的热,光化学和偏置控制稳定性。我们已经报道了我们使用双端交联NLO聚合物LD-3制造和测试集成Mach-Zehnder调制器[4-5]。与基于PUR-DR19聚合物的E-O调制器相比,基于LD-3的调制器表现出更高的热稳定性、光化学稳定性和低的光插入损耗[2]。然而,由于LD-3聚合物具有较低的E-O系数r33,并且没有优化电晕极化时间表,我们的LD-3调制器显示出较高的半波电压,这在大多数应用中是不可接受的。在本文中,我们报告了我们的新器件制造技术,该技术在M-Z调制器中使用光推挽结构有效地将半波电压降低了一半。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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