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Strong modulation of second-harmonic generation with very large contrast in semiconducting CdS via high-field domain.


ABSTRACT: Dynamic control of nonlinear signals is critical for a wide variety of optoelectronic applications, such as signal processing for optical computing. However, controlling nonlinear optical signals with large modulation strengths and near-perfect contrast remains a challenging problem due to intrinsic second-order nonlinear coefficients via bulk or surface contributions. Here, via electrical control, we turn on and tune second-order nonlinear coefficients in semiconducting CdS nanobelts from zero to up to 151?pm?V-1, a value higher than other intrinsic nonlinear coefficients in CdS. We also observe ultrahigh ON/OFF ratio of >104 and modulation strengths ~200%?V-1 of the nonlinear signal. The unusual nonlinear behavior, including super-quadratic voltage and power dependence, is ascribed to the high-field domain, which can be further controlled by near-infrared optical excitation and electrical gating. The ability to electrically control nonlinear optical signals in nanostructures can enable optoelectronic devices such as optical transistors and modulators for on-chip integrated photonics.

SUBMITTER: Ren ML 

PROVIDER: S-EPMC5768866 | biostudies-other | 2018 Jan

REPOSITORIES: biostudies-other

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Strong modulation of second-harmonic generation with very large contrast in semiconducting CdS via high-field domain.

Ren Ming-Liang ML   Berger Jacob S JS   Liu Wenjing W   Liu Gerui G   Agarwal Ritesh R  

Nature communications 20180115 1


Dynamic control of nonlinear signals is critical for a wide variety of optoelectronic applications, such as signal processing for optical computing. However, controlling nonlinear optical signals with large modulation strengths and near-perfect contrast remains a challenging problem due to intrinsic second-order nonlinear coefficients via bulk or surface contributions. Here, via electrical control, we turn on and tune second-order nonlinear coefficients in semiconducting CdS nanobelts from zero  ...[more]

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