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

AI Article Synopsis

  • Controlling nonlinear optical signals is important for optical computing, but it has challenges due to weak intrinsic properties.
  • Researchers successfully enhanced the nonlinear response of CdS nanobelts electrically, achieving a significant modulation strength and a high ON/OFF ratio.
  • This novel control mechanism paves the way for developing advanced optoelectronic devices like optical transistors and modulators, potentially revolutionizing photonic integration.

Article 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, a value higher than other intrinsic nonlinear coefficients in CdS. We also observe ultrahigh ON/OFF ratio of >10 and modulation strengths ~200% V 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.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5768866PMC
http://dx.doi.org/10.1038/s41467-017-02548-3DOI Listing

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