Femtojoule electro-optic modulation using a silicon–organic hybrid device

被引:0
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作者
Sebastian Koeber
Robert Palmer
Matthias Lauermann
Wolfgang Heni
Delwin L Elder
Dietmar Korn
Markus Woessner
Luca Alloatti
Swen Koenig
Philipp C Schindler
Hui Yu
Wim Bogaerts
Larry R Dalton
Wolfgang Freude
Juerg Leuthold
Christian Koos
机构
[1] Institute of Photonics and Quantum Electronics (IPQ) and Institute of Microstructure Technology (IMT),Department of Chemistry
[2] Karlsruhe Institute of Technology (KIT),Department of Information Technology
[3] Now with:,Department of Information Science and Electronic Engineering
[4] Institute of Electromagnetic Fields,undefined
[5] Swiss Federal Institute of Technology (ETH),undefined
[6] Zurich,undefined
[7] Switzerland,undefined
[8] University of Washington,undefined
[9] Seattle,undefined
[10] WA 98195-1700,undefined
[11] USA,undefined
[12] Now with:,undefined
[13] Massachusetts Institute of Technology,undefined
[14] Research Lab of Electronics (RLE),undefined
[15] Cambridge,undefined
[16] MA 02139,undefined
[17] USA,undefined
[18] Now with:,undefined
[19] Infinera Corporation,undefined
[20] Sunnyvale,undefined
[21] CA,undefined
[22] USA,undefined
[23] Ghent University – IMEC,undefined
[24] Photonics Research Group,undefined
[25] Gent,undefined
[26] Belgium,undefined
[27] Now with:,undefined
[28] Zhejiang University,undefined
[29] Hangzhou 310027,undefined
[30] China,undefined
来源
关键词
electro-optic materials; electro-optic modulation; nonlinear organic materials; silicon-organic hybrid;
D O I
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学科分类号
摘要
Energy-efficient electro-optic modulators are at the heart of short-reach optical interconnects, and silicon photonics is considered the leading technology for realizing such devices. However, the performance of all-silicon devices is limited by intrinsic material properties. In particular, the absence of linear electro-optic effects in silicon renders the integration of energy-efficient photonic–electronic interfaces challenging. Silicon–organic hybrid (SOH) integration can overcome these limitations by combining nanophotonic silicon waveguides with organic cladding materials, thereby offering the prospect of designing optical properties by molecular engineering. In this paper, we demonstrate an SOH Mach–Zehnder modulator with unprecedented efficiency: the 1-mm-long device consumes only 0.7 fJ bit−1 to generate a 12.5 Gbit s−1 data stream with a bit-error ratio below the threshold for hard-decision forward-error correction. This power consumption represents the lowest value demonstrated for a non-resonant Mach–Zehnder modulator in any material system. It is enabled by a novel class of organic electro-optic materials that are designed for high chromophore density and enhanced molecular orientation. The device features an electro-optic coefficient of r33≈180 pm V−1 and can be operated at data rates of up to 40 Gbit s−1.
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页码:e255 / e255
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