2011
DOI: 10.1364/oe.19.020876
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High speed silicon electro-optical modulators enhanced via slow light propagation

Abstract: While current optical communication networks efficiently carry and process huge amounts of digital information over large and medium distances, silicon photonics technology has the capacity to meet the ceaselessly increasing demand for bandwidth via energy efficient, inexpensive and mass producible short range optical interconnects. In this context, handling electrical-to-optical data conversion through compact and high speed electro-optical modulators is of paramount importance. To tackle these challenges, we… Show more

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Cited by 74 publications
(61 citation statements)
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“…The electrodes should also be designed such that the velocity of the electrical signal is matched to the velocity of the light in the waveguide. Any velocity mismatch will mean that the drive signal will not act on the same portion of [59]. RF propagation loss should be minimised.…”
Section: Chirpmentioning
confidence: 99%
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“…The electrodes should also be designed such that the velocity of the electrical signal is matched to the velocity of the light in the waveguide. Any velocity mismatch will mean that the drive signal will not act on the same portion of [59]. RF propagation loss should be minimised.…”
Section: Chirpmentioning
confidence: 99%
“…The key in these devices is to use highly efficient phase modulators in order to produce a sufficient modulation depth with a lower drive voltage. Employing a slow light waveguide in which to produce the phase modulator is one possibility to achieve a high efficiency [59,72]. Dispersion engineering can be used to mitigate against the problem of wavelength and temperature sensitivity which these devices usually suffer from to some extent [72].…”
Section: Silicon Based Carrier Depletion Modulator For Short Reach Linksmentioning
confidence: 99%
“…Despite the constant endeavor toward the realization of high-performance devices, carrierdepletion modulators persistently find themselves facing parametric-adjustment trade-offs. As a result, building a modulator that simultaneously features high speed (40 Gb ∕ s), small footprint (a few hundred micrometers), low insertion loss (IL) (<6 dB), and low drive voltage (∼1 V) appears to be more challenging than initially thought [1][2][3][4][5][6]. It is now increasingly believed that the use of slow light may help mitigate these trade-offs.…”
mentioning
confidence: 99%
“…It is now increasingly believed that the use of slow light may help mitigate these trade-offs. As a matter of fact, slow light was foreseen [7] and more recently shown [4,8] as providing an exciting opportunity to significantly enhance conventional "fast light" devices for numerous applications ranging from telecom and datacom to sensing via enlarged light-matter interactions. This paper aims to plainly showcase the advantages of slow light via demonstrating a highly efficient, compact, high-contrast, and low-loss silicon slow wave modulator.…”
mentioning
confidence: 99%
“…Meanwhile, we demonstrated the first carrier depletion-based slow wave modulator as a means to enhance the modulation efficiency [48]. This result is the central achievement of this thesis.…”
Section: Depletion Laterally Corrugated Waveguide Modulatormentioning
confidence: 68%