Jia-Yang Chen
Stevens Institute of Technology
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Featured researches published by Jia-Yang Chen.
Scientific Reports | 2017
Yong Meng Sua; Heng Fan; Amin Shahverdi; Jia-Yang Chen; Yu Ping Huang
Quantum correlated, highly non-degenerate photons can be used to synthesize disparate quantum nodes and link quantum processing over incompatible wavelengths, thereby constructing heterogeneous quantum systems for otherwise unattainable superior performance. Existing techniques for correlated photons have been concentrated in the visible and near-IR domains, with the photon pairs residing within one micron. Here, we demonstrate direct generation and detection of high-purity photon pairs at room temperature with 3.2 um wavelength spacing, one at 780 nm to match the rubidium D2 line, and the other at 3950 nm that falls in a transparent, low-scattering optical window for free space applications. The pairs are created via spontaneous parametric downconversion in a lithium niobate waveguide with specially designed geometry and periodic poling. The 780 nm photons are measured with a silicon avalanche photodiode, and the 3950 nm photons are measured with an upconversion photon detector using a similar waveguide, which attains 34% internal conversion efficiency. Quantum correlation measurement yields a high coincidence-to-accidental ratio of 54, which indicates the strong correlation with the extremely non-degenerate photon pairs. Our system bridges existing quantum technology to the challenging mid-IR regime, where unprecedented applications are expected in quantum metrology and sensing, quantum communications, medical diagnostics, and so on.
Scientific Reports | 2017
Jia-Yang Chen; Yong Meng Sua; Zitong Zhao; Mo Li; Yu Ping Huang
Overlapping in an optical medium with nonlinear susceptibilities, lightwaves can interact, changing each other’s phase, wavelength, waveform shape, or other properties. Such nonlinear optical phenomena, discovered over a half-century ago, have led to a breadth of important applications. Applied to quantum-mechanical signals, however, these phenomena face fundamental challenges that arise from the multimodal nature of the interaction between the electromagnetic fields, such as phase noises and spontaneous Raman scattering. The quantum Zeno blockade allows strong interaction between lightwaves without physical overlap between them, thus offering a viable solution for the aforementioned challenges, as indicated in recent bulk-optics experiments. Here, we report on the observation of quantum Zeno blockade on chip, where a lightwave is modulated by another in a distinct “interaction-free” manner. For quantum applications, we also verify its operations on single-photon signals. Our results promise a scalable platform for overcoming several longstanding challenges in applied nonlinear and quantum optics, enabling manipulation and interaction of quantum signals without decoherence.
Journal of Physics B | 2018
Stephanie Maruca; Santosh Kumar; Yong Meng Sua; Jia-Yang Chen; Amin Shahverdi; Yu Ping Huang
With exotic propagation properties, optical Airy beams have been well studied for innovative applications in communications, biomedical imaging, micromachining, and so on. Here we extend those studies to the quantum domain, creating quantum correlated photons in finite-energy Airy transverse modes via spontaneous parametric down conversion and sub-sequential spatial light modulation. Through two-photon coincidence measurements, we verify their Airy spatial wavefunctions, propagation along a parabolic trajectory, and that the spatial modulation does not introduce any observable degradation of quantum correlation between the photons. These results suggest the feasibility of using spatially structured photons for practically advantageous quantum applications.
conference on information sciences and systems | 2017
Jia-Yang Chen; Yong Meng Sua; Zitong Zhao; Yu Ping Huang
Quantum Zeno blockade offers a distinct approach to signal manipulation and logic operations in a counterintuitive “interaction-free” implementation. Previous experimental studies have used nonlinear waveguides and optical cavities, both in bulk-optics settings. We report the observation of quantum Zeno blockade in a chip-integrable platform, whose results point to all-optical information processing on a single photon level.
Nonlinear Optics | 2017
Jia-Yang Chen; Yong Meng Sua; Zitong Zhao; Mo Li; Yu Ping Huang
Quantum Zeno blockade allows all-optical switching in a counterintuitive “interaction-free” manner. Using a lithium-niobate microdisk cavity nanofabricated on chip, we have observed phase matched sum-frequency generation and interaction-free switching between optical pulses in two tightly confined whispering-gallery modes. We have also verified that our device is suitable for nonlinear operations in a single-photon regime. Our results point to a scalable, chip-integrated platform for nonlinear optics extendable to the quantum regime.
arXiv: Optics | 2018
Jia-Yang Chen; Yong Meng Sua; Heng Fan; Yu Ping Huang
Optics Letters | 2018
Yong Meng Sua; Jia-Yang Chen; Yu Ping Huang
Frontiers in Optics / Laser Science | 2018
Jia-Yang Chen; Yong Meng Sua; Heng Fan; Yu Ping Huang
Frontiers in Optics / Laser Science | 2018
Jia-Yang Chen; Yong Meng Sua; Zhaohui Ma; Chao Tang; Zhan Li; Yu Ping Huang
Frontiers in Optics / Laser Science | 2018
Yong Meng Sua; Jia-Yang Chen; Yu Ping Huang