Programmable on-chip nonlinear photonics.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 41062694.
- Also identified by DOI 10.1038/s41586-025-09620-9 and PMC identifier 12779561.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
Nonlinear optics<sup>1</sup> plays a central role in many photonic technologies, both classical<sup>2-5</sup> and quantum<sup>6-8</sup>. However, the function of a nonlinear-optical device is typically determined during design and fixed during fabrication<sup>9</sup>, restricting the use of nonlinear optics to scenarios in which this inflexibility is tolerable. Here we present a photonic device with highly programmable nonlinear functionality: an optical slab waveguide with an arbitrarily reconfigurable two-dimensional distribution of χ<sup>(2)</sup> nonlinearity. The nonlinearity is realized using electric-field-induced χ<sup>(2)</sup> (refs. <sup>10-16</sup>), and the programmability is engineered by massively parallel control of the electric-field distribution within the device using a photoconductive layer and optical programming with a spatial light pattern. To showcase the versatility of our device, we demonstrate spectral, spatial and spatio-spectral engineering of second-harmonic generation by tailoring arbitrary quasi-phase-matching grating structures<sup>1</sup> in two dimensions. The programmability of the device makes it possible to perform inverse design of grating structures in situ, as well as real-time feedback to compensate for fluctuations in operating and environmental conditions. Our work shows that we can break from the conventional one-device-one-function paradigm, potentially expanding the applications of nonlinear optics to situations in which fast device reconfigurability is desirable-such as in programmable optical quantum gates and quantum light sources<sup>7,17-19</sup>, all-optical signal processing<sup>20</sup>, optical computation<sup>21</sup> and adaptive structured light for sensing<sup>22-24</sup>.