Intense infrared lasers for strong-field science

Author:

Chang Zenghu1ORCID,Fang Li,Fedorov Vladimir2ORCID,Geiger Chase1,Ghimire Shambhu3ORCID,Heide Christian3ORCID,Ishii Nobuhisa4ORCID,Itatani Jiro4ORCID,Joshi Chandrashekhar5,Kobayashi Yuki3ORCID,Kumar Prabhat6,Marra Alphonse1,Mirov Sergey2ORCID,Petrushina Irina7,Polyanskiy Mikhail8ORCID,Reis David A.3ORCID,Tochitsky Sergei5,Vasilyev Sergey9ORCID,Wang Lifeng1,Wu Yi1ORCID,Zhou Fangjie1

Affiliation:

1. Institute for the Frontier of Attosecond Science and Technology (iFAST)

2. University of Alabama at Birmingham

3. Stanford PULSE Institute

4. University of Tokyo

5. University of California Los Angeles

6. Center for Computational Sciences and Engineering

7. Stony Brook University

8. Brookhaven National Laboratory

9. IPG Photonics – Southeast Technology Center

Abstract

The advent of chirped-pulse amplification in the 1980s and femtosecond Ti:sapphire lasers in the 1990s enabled transformative advances in intense laser–matter interaction physics. Whereas most of experiments have been conducted in the limited near-infrared range of 0.8–1 μm, theories predict that many physical phenomena such as high harmonic generation in gases favor long laser wavelengths in terms of extending the high-energy cutoff. Significant progress has been made in developing few-cycle, carrier-envelope phase-stabilized, high-peak-power lasers in the 1.6–2 μm range that has laid the foundation for attosecond X ray sources in the water window. Even longer wavelength lasers are becoming available that are suitable to study light filamentation, high harmonic generation, and laser–plasma interaction in the relativistic regime. Long-wavelength lasers are suitable for sub-bandgap strong-field excitation of a wide range of solid materials, including semiconductors. In the strong-field limit, bulk crystals also produce high-order harmonics. In this review, we first introduce several important wavelength scaling laws in strong-field physics, then describe recent breakthroughs in short- (1.4–3 μm), mid- (3–8 μm), and long-wave (8–15 μm) infrared laser technology, and finally provide examples of strong-field applications of these novel lasers. Some of the broadband ultrafast infrared lasers will have profound effects on medicine, environmental protection, and national defense, because their wavelengths cover the water absorption band, the molecular fingerprint region, as well as the atmospheric infrared transparent window.

Funder

Office of Science

National Science Foundation

Air Force Office of Scientific Research

Defense Advanced Research Projects Agency

Defense Threat Reduction Agency

Office of Naval Research

National Institute of Environmental Health Sciences

Precursory Research for Embryonic Science and Technology

Ministry of Education, Culture, Sports, Science and Technology

National Institutes for Quantum and Radiological Science and Technology

Japan Society for the Promotion of Science

IPG Photonics Corporation

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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