Pneumatically Tunable Droplet Microlaser

Author:

Yamagishi Hiroshi1ORCID,Fujita Keitaro1,Miyagawa Junnosuke1,Mikami Yuya2,Yoshioka Hiroaki2ORCID,Oki Yuji2ORCID,Takada Naoki3ORCID,Baba Soumei3ORCID,Saito Shimpei3ORCID,Someya Satoshi3ORCID,Lin Zhan‐Hong4ORCID,Huang Jer‐Shing4567ORCID,Yamamoto Yohei1ORCID

Affiliation:

1. Department of Materials Science Institute of Pure and Applied Sciences and Tsukuba Research Center for Energy Materials Science (TREMS) University of Tsukuba 1‐1‐1 Tennodai Tsukuba Ibaraki 305‐8573 Japan

2. Faculty of Information Science and Electrical Engineering Kyushu University 744 Motooka, Nishi‐ku Fukuoka 819‐0395 Japan

3. Research Institute for Energy Conservation National Institute of Advanced Industrial Science and Technology (AIST) Tsukuba Ibaraki 305‐8564 Japan

4. Research Department of Nanooptics Leibniz Institute of Photonic Technology Albert‐Einstein Strasse 9 D‐07745 Jena Germany

5. Institute of Physical Chemistry and Abbe Center of Photonics Friedrich‐Schiller‐Universität Jena Helmholtzweg 4 D‐07743 Jena Germany

6. Research Center for Applied Sciences Academia Sinica 128 Sec. 2, Academia Road, Nankang District Taipei 11529 Taiwan

7. Department of Electrophysics National Yang Ming Chiao Tung University 1001 University Road Hsinchu 30010 Taiwan

Abstract

AbstractAn ideally flexible laser may function in unison with minute fluctuations in nature. Lasers made solely from liquids are promising toward this end, but they are intrinsically unstable and have been inapplicable to steady operation under ambient conditions unless they are enclosed in a tailored container or a matrix to prevent the evaporation of the liquid. Here, a simple methodology is reported to form a self‐standing spherical microlaser that is composed fully of liquid and operates steadily even under atmosphere. The robustness and spherical morphology of the droplets are achieved by using ionic liquid as the liquid medium and gently casting the droplets on a substrate covered with hydrophobic nanoparticles to enhance the metastability of the contact angle. The resulting droplets are highly robust and work as efficient long‐lasting laser oscillators. The lasing wavelength is sensitively shifted when the droplets are subjected to a faint breeze or moisture, which is associated with the deformation of the droplet. The morphological and optical responses of the droplet under gas convection are consistently supported by aerodynamic and electromagnetic simulations. The droplets are readily scalable with an inkjet printer without the need for any further treatments.

Funder

Deutsche Forschungsgemeinschaft

Japan Society for the Promotion of Science

Core Research for Evolutional Science and Technology

Publisher

Wiley

Subject

Condensed Matter Physics,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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