Samantha P. Roberts
Columbia University
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Publication
Featured researches published by Samantha P. Roberts.
Optica | 2017
Xingchen Ji; Felippe A. S. Barbosa; Samantha P. Roberts; Avik Dutt; Jaime Cardenas; Yoshitomo Okawachi; Alex Bryant; Alexander L. Gaeta; Michal Lipson
On-chip optical resonators have the promise of revolutionizing numerous fields including metrology and sensing; however, their optical losses have always lagged behind their larger discrete resonator counterparts based on crystalline materials and flowable glass. Silicon nitride (Si3N4) ring resonators open up capabilities for optical routing, frequency comb generation, optical clocks and high precision sensing on an integrated platform. However, simultaneously achieving high quality factor and high confinement in Si3N4 (critical for nonlinear processes for example) remains a challenge. Here, we show that addressing surface roughness enables us to overcome the loss limitations and achieve high-confinement, on-chip ring resonators with a quality factor (Q) of 37 million for a ring with 2.5 {\mu}m width and 67 million for a ring with 10 {\mu}m width. We show a clear systematic path for achieving these high quality factors. Furthermore, we extract the loss limited by the material absorption in our films to be 0.13 dB/m, which corresponds to an absorption limited Q of at least 170 million by comparing two resonators with different degrees of confinement. Our work provides a chip-scale platform for applications such as ultra-low power frequency comb generation, high precision sensing, laser stabilization and sideband resolved optomechanics.
Optics Express | 2018
Moshe Zadka; You-Chia Chang; Aseema Mohanty; Christopher T. Phare; Samantha P. Roberts; Michal Lipson
Current silicon photonics phased arrays based on waveguide gratings enable beam steering with no moving parts. However, they suffer from a trade-off between beam divergence and field of view. Here, we show a platform based on silicon-nitride/silicon that achieves simultaneously minimal beam divergence and maximum field of view while maintaining performance that is robust to fabrication variations. In addition, in order to maximize the emission from the entire length of the grating, we design the gratings strength by varying its duty cycle (apodization) to emit uniformly. We fabricate a millimeter long grating emitter with diffraction-limited beam divergence of 0.089°.
Scientific Reports | 2018
Mohammad Amin Tadayon; Ina P. Pavlova; Kelly Marie Martyniuk; Aseema Mohanty; Samantha P. Roberts; Felippe A. S. Barbosa; Christine A. Denny; Michal Lipson
Ultra-compact micro-optical elements for endoscopic instruments and miniaturized microscopes allow for non-invasive and non-destructive examination of microstructures and tissues. With sub-cellular level resolution such instruments could provide immediate diagnosis that is virtually consistent with a histologic diagnosis enabling for example to differentiate the boundaries between malignant and benign tissue. Such instruments are now being developed at a rapid rate; however, current manufacturing technologies limit the instruments to very large sizes, well beyond the sub-mm sizes required in order to ensure minimal tissue damage. We show here a platform based on planar microfabrication and soft lithography that overcomes the limitation of current optical elements enabling single cell resolution. We show the ability to resolve lithographic features that are as small as 2 μm using probes with a cross section that is only 100 microns in size. We also show the ability to image individual activated neural cells in brain slices via our fabricated probe.
Proceedings of SPIE | 2017
Mohammad Amin Tadayon; Aseema Mohanty; Samantha P. Roberts; Felippe A. S. Barbosa; Michal Lipson
GRIN (Graded index) lens have revolutionized micro endoscopy enabling deep tissue imaging with high resolution. The challenges of traditional GRIN lenses are their large size (when compared with the field of view) and their limited resolution. This is because of the relatively weak NA in standard graded index lenses. Here we introduce a novel micro-needle platform for endoscopy with much higher resolution than traditional GRIN lenses and a FOV that corresponds to the whole cross section of the needle. The platform is based on polymeric (SU-8) waveguide integrated with a microlens micro fabricated on a silicon substrate using a unique molding process. Due to the high index of refraction of the material the NA of the needle is much higher than traditional GRIN lenses. We tested the probe in a fluorescent dye solution (19.6 µM Alexa Flour 647 solution) and measured a numerical aperture of 0.25, focal length of about 175 µm and minimal spot size of about 1.6 µm. We show that the platform can image a sample with the field of view corresponding to the cross sectional area of the waveguide (80x100 µm2). The waveguide size can in principle be modified to vary size of the imaging field of view. This demonstration, combined with our previous work demonstrating our ability to implant the high NA needle in a live animal, shows that the proposed system can be used for deep tissue imaging with very high resolution and high field of view.
arXiv: Optics | 2016
Xingchen Ji; Felippe A. S. Barbosa; Samantha P. Roberts; Avik Dutt; Jaime Cardenas; Yoshitomo Okawachi; Alex Bryant; Alexander L. Gaeta; Michal Lipson
conference on lasers and electro optics | 2018
Steven A. Miller; Christopher T. Phare; You-Chia Chang; Xingchen Ji; Oscar A. Jimenez Gordillo; Aseema Mohanty; Samantha P. Roberts; Min Chul Shin; Brian Stern; Moshe Zadka; Michal Lipson
conference on lasers and electro optics | 2018
Gaurang R. Bhatt; Samantha P. Roberts; Raphael St-Gelais; Tong Lin; Aseema Mohanty; Bo Zhao; J.-M. Hartmann; Shanhui Fan; Michal Lipson
conference on lasers and electro optics | 2017
You-Chia Chang; Samantha P. Roberts; Brian Stern; Ipshita Datta; Michal Lipson
conference on lasers and electro optics | 2017
Samantha P. Roberts; Xingchen Ji; Jaime Cardenas; Alex Bryant; Michal Lipson
conference on lasers and electro optics | 2017
Moshe Zadka; You-Chia Chang; Aseema Mohanty; Christopher T. Phare; Samantha P. Roberts; Michal Lipson