Spatiotemporal dispersion compensation for a 200-THz noncollinear optical parametric amplifier

Author:

Carbery William P.1ORCID,Bizimana Laurie A.1ORCID,Barclay Matthew S.2ORCID,Wright Nicholas D.2ORCID,Davis Paul H.23ORCID,Knowlton William B.24ORCID,Pensack Ryan D.2ORCID,Arpin Paul C.5ORCID,Turner Daniel B.12ORCID

Affiliation:

1. Department of Chemistry, New York University 1 , New York, New York 10003, USA

2. Micron School for Materials Science and Engineering, Boise State University 2 , Boise, Idaho 83725, USA

3. Center for Advanced Energy Studies 3 , Idaho Falls, Idaho 83401, USA

4. Department of Electrical and Computer Engineering, Boise State University 4 , Boise, Idaho 83725, USA

5. Department of Physics, California State University, Chico 5 , Chico, California 95929, USA

Abstract

A noncollinear optical parametric amplifier (NOPA) can produce few-cycle femtosecond laser pulses that are ideally suited for time-resolved optical spectroscopy measurements. However, the nonlinear-optical process giving rise to ultrabroadband pulses is susceptible to spatiotemporal dispersion problems. Here, we detail refinements, including chirped-pulse amplification (CPA) and pulse-front matching (PFM), that minimize spatiotemporal dispersion and thereby improve the properties of ultrabroadband pulses produced by a NOPA. The description includes a rationale behind the choices of optical and optomechanical components, as well as assessment protocols. We demonstrate these techniques using a 1 kHz, second-harmonic Ti:sapphire pump configuration, which produces ∼5-fs duration pulses that span from about 500 to 800 nm with a bandwidth of about 200 THz. To demonstrate the utility of the CPA-PFM-NOPA, we measure vibrational quantum beats in the transient–absorption spectrum of methylene blue, a dye molecule that serves as a reference standard.

Funder

U.S. Department of Energy

Publisher

AIP Publishing

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